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Codex 8ba8dca3e7 docs(priorities): drop completed examples task
Harness (E2E) / Harnesses (mock LLM) (push) Waiting to run
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2026-07-01 19:41:09 +00:00
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# North Star
The direction the loop aligns every increment to. Depth lives in
[`internal/docs/THESIS.md`](../../internal/docs/THESIS.md); this is the short,
operative version the planner and builder read each run.
## Mission
Make building an **agent** as easy as building a **service**, on one runtime.
Go Micro is a holistic agent harness and service framework encapsulating the
lifecycle of **services → agents → workflows** — pluggable, progressive, and
AI-native by default.
## Right now — developer adoption
The framework's depth is strong; the **on-ramp** is the gap. Weight the developer
experience — a walkable first-agent tutorial, discoverable examples, docs
wayfinding, install friction, debugging, the 0→1 and 0→hero path — **at least as
highly as internal hardening**. A developer succeeding on their first agent
matters more right now than another conformance/observability/interop increment.
Do not let the queue fill entirely with internal depth work.
## Guardrails
- One concern per PR; small and reversible.
- The gate is green CI (`go build`, `go test`, `golangci-lint`, `make harness`),
not human review — keep the suite strong; the loop is only as good as its evaluator.
- **Off-limits without a human** (surface as notes, never auto-merge): breaking
public-API changes, brand/positioning/marketing copy, new dependencies,
architectural rewrites, product-default changes with broad behavioral impact.
- Stay on `claude/*` / `codex/*` branches; base PRs on `master`. See
[`CODEX.md`](../../CODEX.md) and [`internal/docs/CONTINUOUS_IMPROVEMENT.md`](../../internal/docs/CONTINUOUS_IMPROVEMENT.md).
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# Priorities
The ranked work queue for the autonomous improvement loop. The
**architecture-review** pass (the *architect*) owns this file: each run it turns
the [roadmap](../../ROADMAP.md) plus an internal scan (gaps in the
services → agents → workflows lifecycle, API coherence, drift, tech debt, test and
DX friction) into a single ordered list — highest-value first — and links each
item to a tracking issue. The hourly **continuous-improvement** pass works the
**top item whose issue is still open**. So the architect decides *what*, and the
increment loop *builds* it.
**Reading / editing.** An item is done when its linked issue closes (the increment
that builds it adds `Closes #<issue>`). Roadmap phase (Now → Next → Later) is the
primary ordering; internal findings are interleaved by value, not kept in a
separate list. The human can reorder this list — or the issues — at any time to
redirect the loop; direction always wins.
**Off-limits to the loop** (the architect proposes these as notes, never as queue
items the loop can auto-merge): brand/positioning copy, breaking public-API
changes, architectural rewrites. Those go to the human.
## Work queue (ranked)
1. **Make AtlasCloud conformance deterministically request the echo tool** ([#3924](https://github.com/micro/go-micro/issues/3924)) — #3926 shipped the previous plan/delegate notify wait fix, so the queue should drop the completed #3918 item. The freshest live harness signal now fails even earlier: AtlasCloud/minimax-m3 completes without invoking the required `conformance_echo` tool. This is the highest Now-phase item because the getting-started and 0→hero contract depends on providers actually using service tools, not just returning prose, and the CI gate needs an actionable deterministic failure path.
2. **Make AtlasCloud conformance deterministically exercise guarded delegation** ([#3917](https://github.com/micro/go-micro/issues/3917)) — after the echo-tool path is stable, the same live provider must attempt the blocked delegate path so guardrails are proven under a real model, not only mocks. This keeps plan/delegate safety provider-portable without public API changes and protects the services → agents → workflows story from drifting at the delegation seam.
3. **Broaden provider streaming and keep chat/A2A streaming end to end** ([#3903](https://github.com/micro/go-micro/issues/3903)) — once the live gate is stable, streaming is the highest developer-visible Next-phase seam. Real chat and long-running A2A tasks need token streaming to stay coherent from provider → `ai.Stream``micro chat` → A2A `message/stream`, with mock/default CI coverage plus key-gated live provider checks and safe fallback for non-streaming providers.
4. **Trace agent runs as OpenTelemetry spans** ([#3908](https://github.com/micro/go-micro/issues/3908)) — the blog/README/roadmap story promises an operable harness, and the developer on-ramp now includes chat, inspect, and run-history checkpoints. The next observability gap is production-grade trace correlation for `RunInfo`: steps, tool calls, delegation, status, durations, and failures should be visible as spans while defaulting to no-op when tracing is not configured.
_Seeded by Claude Code from the roadmap + open issues; thereafter maintained by the
architecture-review pass._
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<!--
The BUILDER prompt — go-micro's continuous-improvement increment. Editable
policy; the workflow prepends the agent @mention and substitutes __ISSUE__
before posting. Keep __ISSUE__ literal.
-->
Run one continuous-improvement increment per `internal/docs/CONTINUOUS_IMPROVEMENT.md`, aligned to the North Star in `.github/loop/NORTH_STAR.md` (the services → agents → workflows lifecycle, with developer adoption as the current goal).
PICK THE WORK FROM THE QUEUE: read `.github/loop/PRIORITIES.md` and take the highest-ranked item whose linked issue is still OPEN — that is your task, and its issue number is the one you close. If `PRIORITIES.md` is missing or every listed item's issue is already closed, fall back to the single highest-value roadmap / open-issue / improvement-radar item yourself.
Implement it, and VERIFY `go build ./...`, `go test ./...`, and `golangci-lint run ./...`.
Open the PR YOURSELF from the shell — do NOT use the make_pr tool (in this environment it only records metadata and never creates a PR). Create a uniquely-named branch under the `codex/` prefix: `git switch -c codex/increment-__ISSUE__`, then `git push -u origin codex/increment-__ISSUE__`, then `gh pr create --base master --label codex --title "<title>" --body "<body; include 'Closes #<the priority issue you built>' so it leaves the queue, and 'Closes #__ISSUE__' for this run's tracker>"`. Finally enable auto-merge so GitHub merges it once CI is green: `gh pr merge --squash --auto --delete-branch`.
One concern per PR. Stay out of breaking public API and brand/positioning copy — surface those as notes for the human instead.
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<!--
The COHERENCE prompt — go-micro's DevRel pass (public-surface coherence +
CHANGELOG upkeep + changelog blog). Editable policy; the workflow prepends the
agent @mention and substitutes __ISSUE__ before posting. Keep __ISSUE__ literal.
-->
Act as DevRel for go-micro. Do these, in order.
COHERENCE AUDIT. Audit the public surface — `README.md`, `internal/website/` (landing `index.html` + `docs/`), and the blog under `internal/website/blog/` — for coherence with the North Star in `.github/loop/NORTH_STAR.md` (an agent harness and service framework; the services → agents → workflows lifecycle). Look for: places where README / website / docs contradict each other, are stale, or describe behavior that has since changed (cross-check against the code and recently merged PRs); whether the README is crisp and leads with the harness positioning; and one to three genuinely blog-worthy items from recently shipped work.
CHANGELOG UPKEEP (safe factual task — goes in the auto-merged PR). Keep `CHANGELOG.md` living, in Keep-a-Changelog format with newest content at the top under `## [Unreleased]`. Enumerate PRs merged to master since the last update (`gh pr list --state merged --base master --limit 60 --json number,title,mergedAt,labels`) and add a concise, user-facing entry for each genuine change not yet recorded under the right `### Added` / `### Changed` / `### Fixed` / `### Documentation` subheading — SKIP internal loop/CI/priorities-refresh churn. If a new `vX.Y.Z` tag was cut since the last run (`git fetch --tags --force`), rename `## [Unreleased]` to `## [X.Y.Z] - <Month YYYY>` and open a fresh empty `## [Unreleased]` above it. Do not invent entries.
CHANGELOG BLOG POST (blog voice — do NOT auto-merge). If, and only if, enough user-facing work has accumulated since the last changelog post to be worth reading (roughly a week's worth; not a near-empty post every day), draft a short "What's new in Go Micro" post as the next-numbered file in `internal/website/blog/`, mirroring the latest post's frontmatter and prev-nav, and add an entry at the top of `internal/website/blog/index.html`. Base it strictly on the CHANGELOG.
THEN: (A) post a findings report as a comment on this issue (#__ISSUE__) — what's aligned, what drifted, what you fixed, the CHANGELOG entries added, and whether you drafted a blog post (and why/why not). (B) Open ONE auto-merging PR for the SAFE factual work only — coherence/crispness fixes AND the CHANGELOG update (NOT brand/positioning rewrites, NOT the blog post): `git switch -c codex/coherence-__ISSUE__`, `git push -u origin codex/coherence-__ISSUE__`, `gh pr create --base master --label codex --title "<title>" --body "<summary, Closes #__ISSUE__>"`, then `gh pr merge --squash --auto --delete-branch`. (C) If you drafted a changelog blog post, open it as a SEPARATE PR (`codex/coherence-blog-__ISSUE__`, title prefixed `blog:`) and do NOT enable auto-merge — leave it for the human. Same for any brand/positioning copy. Do not use the make_pr tool.
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<!--
The PLANNER prompt — go-micro's "architect / founder lens". Editable policy;
the workflow prepends the agent @mention and substitutes __ISSUE__ (this run's
tracking issue) before posting. Keep __ISSUE__ literal.
-->
Act as the architect — the founder lens — for go-micro, running continuously alongside the builders. Hold the whole picture: how the harness, the framework, and the developer UX fit together, what is in flight and what just merged, what to prioritize next, and what is missing or has drifted.
(1) TRACK STATE — scan recently merged PRs and open `codex` PRs/issues to see what shipped and what is being built right now, so the queue reflects reality (drop done items, don't re-queue in-flight work).
(2) ASSESS against the North Star in `.github/loop/NORTH_STAR.md` — lead with its Mission (*make building an agent as easy as building a service, on one runtime*) and re-derive alignment from the CANON: the blog under `internal/website/blog`, the `README`, and the website (read these, don't rely on the North Star alone), then `ROADMAP.md` (Now → Next → Later). Judge every priority against the mission: does it make the services → agents → workflows lifecycle simpler, more cohesive, and more operable? CURRENT GOAL — developer adoption: weight the on-ramp (walkable first-agent tutorial, discoverable examples, docs wayfinding, install friction, debugging, 0→1 and 0→hero) at least as highly as internal hardening; do not let the queue fill entirely with internal depth work. Look at coherence and seams across the core packages (agent, ai, flow, gateway/mcp, gateway/a2a, model, server, store, registry) and the dev inner loop (scaffold → run → chat → inspect → deploy). Flag drift in either direction: work drifting from the mission, or the North Star/website drifting from the lived story in the blog.
(3) MAINTAIN THE QUEUE in `.github/loop/PRIORITIES.md` — a SINGLE ordered list, highest-value first, each item linking a scoped, CI-verifiable issue (#N); roadmap phase is the primary ordering, internal findings (cohesion gaps, DX friction, missing pieces) interleaved by value. For any prioritized gap with no issue, file one: `gh issue create --label codex --label enhancement --title "<scoped task>" --body "<goal, scope, acceptance criteria>"`.
OUTPUT: post a concise assessment as a comment on this issue (#__ISSUE__) — what shipped, what's in flight, the top risks/gaps, and the reasoning behind the ranking. If the ranking actually changed, open ONE PR for `.github/loop/PRIORITIES.md`: `git switch -c codex/planner-__ISSUE__`, `git push -u origin codex/planner-__ISSUE__`, `gh pr create --base master --label codex --title "<title>" --body "<summary, Closes #__ISSUE__>"`, then `gh pr merge --squash --auto --delete-branch`. If the queue is already accurate, just close this issue (`gh issue close __ISSUE__`).
Do NOT make breaking public-API or architectural changes yourself — surface those in the assessment as notes for the human, never as auto-merged changes. Open the PR yourself from the shell with `gh`; do not use the make_pr tool (it is a no-op stub).
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<!--
The SECURITY prompt — go-micro's security audit. Editable policy; the workflow
prepends the agent @mention and substitutes __ISSUE__ before posting. Keep
__ISSUE__ literal.
Deliberately conservative: it does NOT auto-merge fixes, and it does NOT publish
exploit details in public issues (responsible disclosure).
-->
Act as the security reviewer for go-micro. Audit for real, exploitable vulnerabilities — skip theoretical or lint-style noise.
GO-MICRO ATTACK SURFACE — weight these:
- **MCP gateway** (`gateway/mcp`) and **A2A gateway** (`gateway/a2a`) — untrusted input from agents/tools: auth/scope enforcement, injection into downstream RPC, SSRF via tool/agent URLs, rate-limit/circuit-breaker bypass, info leak in errors.
- **x402 payments** (`wrapper/x402`) — payment verification and settlement: signature/mandate validation, replay, budget-reservation races, facilitator auth (CDP bearer) handling, amount/network confusion.
- **Auth** (`auth/jwt`, `wrapper/auth`) — token validation, algorithm confusion, scope/priority rule bypass, missing checks on endpoints.
- **AI providers** (`ai/*`) — base-URL and endpoint handling: SSRF via config-controlled `BaseURL`, API keys leaking into logs/errors, TLS verification.
- **Agent tool loop** (`agent/`) — prompt injection reaching real tool calls, guardrail (`MaxSteps`/`LoopLimit`/`ApproveTool`) bypass, delegate/plan side effects.
- **Trust boundaries** — `server` RPC handlers, `broker` consumers, `store`/`registry` inputs, `transport` TLS defaults (v6 verifies by default — confirm nothing regressed).
- **The loop itself** — `.github/workflows/loop-*.yml`: the `CODEX_TRIGGER_TOKEN` PAT must never be echoed/leaked; workflow inputs must not enable script injection.
- **Dependencies** — run `govulncheck ./...` (install if needed) and inspect `go.mod` for known CVEs.
DEDUPE against open issues first.
HOW TO REPORT:
- **Known/public dependency CVEs**: file a `security` issue referencing the CVE + module; you MAY open a PR bumping to the patched version. Do NOT enable auto-merge.
- **Novel, exploitable vulnerabilities in this code** (not yet public): do NOT post an exploit or PoC in a public issue. File a CONCISE `security` + `needs-human` issue naming the class, location (file/function), and impact only — and note it should go through GitHub private vulnerability reporting. Do NOT open a public fix PR that reveals it.
- **Low-risk hardening**: a normal `security` issue is fine.
NEVER auto-merge a security change. Never weaken a control to make a test pass. Architectural/breaking fixes → `needs-human` with the tradeoff.
Post a summary as a comment on this issue (#__ISSUE__) — findings by severity, what you filed, what needs a human — then close it (`gh issue close __ISSUE__`). If you open a dependency-bump PR: `git switch -c loop/security-__ISSUE__`, `git push -u origin loop/security-__ISSUE__`, `gh pr create --base master --label codex --label security --title "<title>" --body "<summary, Closes #__ISSUE__>"` — then STOP, do NOT run `gh pr merge --auto`. Do not use the make_pr tool.
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<!--
The TRIAGE prompt — go-micro's CI-failure feedback path. Editable policy; the
workflow prepends the agent @mention and substitutes __ISSUE__ (this tracking
issue) and __RUNURL__ (the failed run) before posting. Keep both literal.
-->
Triage the failed CI run at __RUNURL__. It may be the linter (Lint), the unit/integration tests (Run Tests), or the provider-conformance harness (Harness (E2E)).
Read the logs and root-cause each distinct failure. DEDUPE against open issues — if a failure matches an existing issue, comment "recurred" there instead of filing a duplicate.
For each genuine, self-contained defect, file a scoped issue (`gh issue create --label codex --label enhancement --title "<scoped fix>" --body "<root cause, where, acceptance criteria>"`) so the increment loop builds it and the next CI/harness run verifies it. A lint or test failure on master is a real regression — file it so it is fixed promptly; do NOT ignore it.
IGNORE only genuine transient flakes — live-model latency, provider outages, rate limits, network timeouts with no code cause (mostly relevant to the harness). Anything needing a breaking or architectural change: file it as `needs-human` and describe it, rather than auto-queuing it as a routine fix.
Close this issue (`gh issue close __ISSUE__`) when triage is done. Open any PR yourself from the shell with `gh`; do not use the make_pr tool.
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providers:
description: "Comma-separated providers for live conformance (default: all supported)"
required: false
default: "anthropic,openai,gemini,groq,minimax,mistral,together,atlascloud"
default: "anthropic,openai,gemini,groq,mistral,together,atlascloud"
harnesses:
description: "Comma-separated harnesses for live conformance"
required: false
@@ -64,7 +64,6 @@ jobs:
OPENAI_API_KEY: ${{ secrets.OPENAI_API_KEY }}
GEMINI_API_KEY: ${{ secrets.GEMINI_API_KEY }}
GROQ_API_KEY: ${{ secrets.GROQ_API_KEY }}
MINIMAX_API_KEY: ${{ secrets.MINIMAX_API_KEY }}
MISTRAL_API_KEY: ${{ secrets.MISTRAL_API_KEY }}
TOGETHER_API_KEY: ${{ secrets.TOGETHER_API_KEY }}
ATLASCLOUD_API_KEY: ${{ secrets.ATLASCLOUD_API_KEY }}
@@ -74,7 +73,7 @@ jobs:
# catalog id differs (Atlas uses org/model ids).
ATLASCLOUD_MODEL: ${{ vars.ATLASCLOUD_MODEL || 'minimaxai/minimax-m3' }}
run: |
PROVIDERS="${{ github.event.inputs.providers || 'anthropic,openai,gemini,groq,minimax,mistral,together,atlascloud' }}"
PROVIDERS="${{ github.event.inputs.providers || 'anthropic,openai,gemini,groq,mistral,together,atlascloud' }}"
HARNESSES="${{ github.event.inputs.harnesses || 'agent,universe,agent-flow,plan-delegate,a2a-stream-fallback' }}"
REQUIRE_CONFIGURED="${{ github.event.inputs.require_configured || 'false' }}"
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name: "Loop: Architect (Planner)"
# Continuous high-altitude oversight of the whole framework and harness — the
# "founder lens" of the autonomous loop (internal/docs/CONTINUOUS_IMPROVEMENT.md).
# Where DevRel watches the public story and the increment loop ships code, the
# architect watches the SYSTEM and runs alongside the builders: it tracks what is
# in flight and what just merged, keeps the roadmap priorities live, and judges
# cohesion (harness <-> framework <-> dev UX), missing pieces, and realignment.
#
# Its OUTPUT is the ranked queue in internal/docs/PRIORITIES.md plus an assessment
# — NOT large refactors. Breaking public-API and architectural changes stay with
# the human (see CONTINUOUS_IMPROVEMENT.md).
#
# Runs hourly, offset before the increment loop (:29) so it re-prioritizes and
# THEN the loop builds the new top of the queue. Opens a fresh issue and
# dispatches Codex via CODEX_TRIGGER_TOKEN.
on:
workflow_dispatch: {}
schedule:
- cron: "59 * * * *" # hourly at :59, just before the :29 increment run (tunable)
permissions:
issues: write
concurrency:
group: architecture-review
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- name: Open an architecture review issue and dispatch Codex
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TRIGGER_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TRIGGER_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (Codex ignores Actions-bot comments)."
exit 0
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Architecture review #$RUN_NUMBER" \
--body "Continuous architecture / harness oversight against the North Star in internal/docs/THESIS.md. Output: a re-ranked internal/docs/PRIORITIES.md (only if it changed) plus an assessment.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching Codex (Architect)."
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body \
"@codex Act as the architect — the founder lens — for go-micro, running continuously alongside the builders. Hold the whole picture: how the harness, the framework, and the developer UX fit together cohesively, what is in flight and what just merged, what to prioritize next on the roadmap, and what is missing or has drifted. Each run: (1) TRACK STATE — scan recently merged PRs and open codex PRs/issues to see what shipped and what is being built right now, so the queue reflects reality (drop done items, don't re-queue in-flight work). (2) ASSESS against the North Star in internal/docs/THESIS.md — lead with its Mission (*the problem we solve: make building an agent as easy as building a service, on one runtime*) and re-derive alignment from the CANON it names (the blog under internal/website/blog, the README, and the website — read these, don't rely on THESIS.md alone), then ROADMAP.md (Now → Next → Later). Judge every priority against the mission: does it make the services → agents → workflows lifecycle simpler, more cohesive, and more operable? CURRENT GOAL — DEVELOPER ADOPTION: the framework's depth is strong but its ON-RAMP is the gap, and the strategic priority right now is developer adoption / reviving real usage. Weight the developer on-ramp and DX — a walkable first-agent tutorial, discoverable examples, docs wayfinding/nav, install friction, debugging, the 0→1 and 0→hero experience — AT LEAST as highly as internal hardening. A developer succeeding on their first agent matters more right now than another conformance/observability/interop increment; do NOT let the queue fill entirely with internal depth work — keep open adoption/on-ramp items near the top. Look at coherence and seams across the core packages (agent, ai, flow, gateway/mcp, gateway/a2a, model, server, store, registry), the dev inner loop (scaffold → run → chat → inspect → deploy), missing pieces, duplication/drift, and realignment. Flag drift in EITHER direction: work drifting from the mission, or the North Star/website drifting from the lived story in the blog (which needs re-grounding in the canon). (3) MAINTAIN THE QUEUE in internal/docs/PRIORITIES.md — a SINGLE ordered list, highest-value first, each item linking a scoped CI-verifiable issue (#N); roadmap phase is the primary ordering, internal findings (cohesion gaps, DX friction, missing pieces) interleaved by value. For any prioritized gap that has no issue yet, file one: \`gh issue create --label codex --label enhancement --title \"<scoped task>\" --body \"<goal, scope, acceptance criteria>\"\`. OUTPUT: post a concise assessment as a comment on this issue (#$ISSUE_NUM) — what shipped, what's in flight, the top risks/gaps/missing pieces, and the reasoning behind the ranking. If the ranking actually changed, open ONE PR for PRIORITIES.md: \`git switch -c codex/architect-$ISSUE_NUM\`, \`git push -u origin codex/architect-$ISSUE_NUM\`, \`gh pr create --base master --label codex --title \"<title>\" --body \"<summary, Closes #$ISSUE_NUM>\"\`, then \`gh pr merge --squash --auto --delete-branch\`. If the queue is already accurate and correctly ranked, do NOT open a PR — just close this issue (\`gh issue close $ISSUE_NUM\`). Do NOT make breaking public-API or architectural changes yourself — surface those in the assessment as notes for the human, never as auto-merged changes. Do not use the make_pr tool (it is a no-op stub)."
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name: "Loop: Builder"
name: "Loop: Builder (Generator)"
# Generated by `micro loop init`. A dispatch role of the autonomous loop: on a
# cadence it opens a fresh tracking issue and posts the instruction in
# .github/loop/prompts/builder.md to the agent (@codex).
# Durable backbone for the autonomous improvement loop
# (see internal/docs/CONTINUOUS_IMPROVEMENT.md).
#
# The workflow is the MECHANISM; that prompt file is the editable POLICY —
# change what this role does by editing the prompt, not this YAML. A FRESH
# issue per run is deliberate: agents derive the PR branch name from the
# triggering issue, so reusing one tracker collapses every run onto one branch.
# A Claude Max subscription provides no API key for CI, so the loop is driven by
# Codex rather than Claude Code: on a cadence this opens a fresh tracking issue and
# posts an @codex instruction on it, and Codex runs one improvement increment, opens
# a PR (git push + gh pr create — the make_pr tool is a no-op stub), and enables
# GitHub auto-merge (gh pr merge --auto) so the PR lands once the required CI checks
# pass. No separate merge sweep — branch protection + native auto-merge is the gate.
# (See the per-issue rationale below.)
#
# Gated on CODEX_TRIGGER_TOKEN: the agent ignores @mentions from the
# github-actions bot, so dispatch posts as a real user (a PAT). No token → no-op.
# Codex does NOT respond to comments authored by the github-actions bot, so the
# dispatch is GATED on a CODEX_TRIGGER_TOKEN secret (a PAT for a user account Codex
# follows). Until that secret is set the workflow runs but no-ops — this avoids
# piling up @codex comments that Codex silently ignores. The moment the secret is
# added the loop activates with no further change.
#
# Each run opens a FRESH issue and dispatches Codex there, rather than re-commenting
# on one tracker issue. Codex derives its PR branch name from the triggering issue's
# context, so repeated dispatches on a single issue all collapse onto one branch name
# (codex/github-mention-<that-issue-slug>) — the first increment opens a PR, the rest
# collide on the occupied branch and silently fail to open one. A unique issue per
# run gives each increment its own branch and a clean PR. The dispatch asks Codex to
# "Closes #<issue>" so each tracking issue auto-closes when its PR merges.
on:
workflow_dispatch: {}
schedule:
- cron: "29 * * * *"
- cron: "29 * * * *" # hourly, off-minute (tune as needed)
permissions:
issues: write
concurrency:
group: loop-builder
group: continuous-improvement
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch builder
- name: Open a fresh increment issue and dispatch Codex
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
HAS_TRIGGER_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (the agent ignores bot @mentions)."
if [ "$HAS_TRIGGER_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping dispatch."
echo "Codex ignores comments from the github-actions bot, so posting now"
echo "would only create noise. Add a CODEX_TRIGGER_TOKEN secret (a PAT for"
echo "a user account Codex follows) to activate the loop."
exit 0
fi
PROMPT=".github/loop/prompts/builder.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
# A unique issue per run → unique codex/ branch → no collisions.
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: build increment #$RUN_NUMBER" \
--body "Autonomous builder pass. Direction: .github/loop/NORTH_STAR.md; queue: .github/loop/PRIORITIES.md.")
--title "Continuous improvement increment #$RUN_NUMBER" \
--body "Autonomous continuous-improvement increment. North Star: internal/docs/THESIS.md; charter: internal/docs/CONTINUOUS_IMPROVEMENT.md. Tracker: #3024.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching builder."
# The prompt file is the policy; strip its editorial <!-- --> header and
# substitute the tracking issue number (__ISSUE__) at runtime.
{
echo "@codex"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
echo "Opened issue #$ISSUE_NUM — dispatching Codex."
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body \
"@codex Run one continuous-improvement increment per internal/docs/CONTINUOUS_IMPROVEMENT.md, aligned to the North Star in internal/docs/THESIS.md (the holistic services → agents → workflows lifecycle). PICK THE WORK FROM THE QUEUE: read internal/docs/PRIORITIES.md and take the highest-ranked item whose linked issue is still OPEN — that is your task, and its issue number is the one you close. (If PRIORITIES.md is missing or every listed item's issue is already closed, fall back to picking the single highest-value roadmap/issue/improvement-radar item yourself.) Implement it, and verify \`go build ./...\`, \`go test ./...\`, and \`golangci-lint run ./...\`. Then open the PR YOURSELF from the shell — do NOT use the make_pr tool (in this environment it only records metadata and never creates a PR). Create a uniquely-named branch under the codex/ prefix and open the PR from it: \`git switch -c codex/increment-$ISSUE_NUM\`, then \`git push -u origin codex/increment-$ISSUE_NUM\`, then \`gh pr create --base master --label codex --title \"<title>\" --body \"<body; include 'Closes #<the priority issue you built>' so it leaves the queue, and 'Closes #$ISSUE_NUM' for this run's tracker>\"\`. Finally enable auto-merge so GitHub merges it once CI is green: \`gh pr merge --squash --auto --delete-branch\`. The gh CLI is installed and authenticated and origin points to $REPO. One concern per PR; stay out of brand/positioning copy and breaking public API."
-60
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@@ -1,60 +0,0 @@
name: "Loop: Coherence"
# Generated by `micro loop init`. A dispatch role of the autonomous loop: on a
# cadence it opens a fresh tracking issue and posts the instruction in
# .github/loop/prompts/coherence.md to the agent (@codex).
#
# The workflow is the MECHANISM; that prompt file is the editable POLICY —
# change what this role does by editing the prompt, not this YAML. A FRESH
# issue per run is deliberate: agents derive the PR branch name from the
# triggering issue, so reusing one tracker collapses every run onto one branch.
#
# Gated on CODEX_TRIGGER_TOKEN: the agent ignores @mentions from the
# github-actions bot, so dispatch posts as a real user (a PAT). No token → no-op.
on:
workflow_dispatch: {}
schedule:
- cron: "0 7 * * *"
permissions:
issues: write
concurrency:
group: loop-coherence
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch coherence
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (the agent ignores bot @mentions)."
exit 0
fi
PROMPT=".github/loop/prompts/coherence.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: coherence review #$RUN_NUMBER" \
--body "Autonomous coherence pass. Direction: .github/loop/NORTH_STAR.md; queue: .github/loop/PRIORITIES.md.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching coherence."
# The prompt file is the policy; strip its editorial <!-- --> header and
# substitute the tracking issue number (__ISSUE__) at runtime.
{
echo "@codex"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
+61
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@@ -0,0 +1,61 @@
name: "Loop: DevRel"
# Daily higher-altitude coherence pass over the PUBLIC surface — README,
# website (landing + docs), and blog — part of the autonomous loop
# (internal/docs/CONTINUOUS_IMPROVEMENT.md). The hourly increment loop ships
# code; this keeps the story coherent: docs/website aligned, README crisp, and
# a steady supply of things worth blogging about.
#
# It also keeps the CHANGELOG living: each run reconciles the `[Unreleased]`
# section of CHANGELOG.md against what actually merged (rolling it into a dated
# version heading whenever a new tag was cut), and — when enough has shipped —
# drafts a "what's new" changelog blog post narrating it.
#
# Like the increment loop it opens a fresh issue and dispatches Codex via
# CODEX_TRIGGER_TOKEN (Codex ignores Actions-bot comments). Autonomy boundary:
# SAFE factual-alignment and crispness fixes — including CHANGELOG.md upkeep —
# auto-merge; brand/positioning copy and the changelog blog post are opened as a
# PR but left for the human to review/merge (blog voice stays with the human).
on:
workflow_dispatch: {}
schedule:
- cron: "0 7 * * *" # daily, 07:00 UTC (tunable)
permissions:
issues: write
concurrency:
group: devrel-review
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- name: Open a DevRel review issue and dispatch Codex
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TRIGGER_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TRIGGER_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (Codex ignores Actions-bot comments)."
exit 0
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "DevRel coherence review #$RUN_NUMBER" \
--body "Daily DevRel / coherence pass over README, website (landing + docs), and the blog, plus CHANGELOG.md upkeep and a changelog blog post. North Star: internal/docs/THESIS.md.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching Codex (DevRel)."
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body \
"@codex Act as DevRel for go-micro. Do FOUR things this run.
COHERENCE AUDIT. Audit the PUBLIC surface — \`README.md\`, \`internal/website/\` (landing \`index.html\` + \`docs/\`), and the blog under \`internal/website/blog/\` — for coherence with the North Star in internal/docs/THESIS.md (an agent harness and service framework; the services → agents → workflows lifecycle). Look for: (1) places where README / website / docs contradict each other, are stale, or describe behavior that has since changed (cross-check against the code and recent merged PRs); (2) whether the README is crisp and leads with the harness positioning; (3) one to three genuinely blog-worthy items from recently shipped work.
CHANGELOG UPKEEP (this is a SAFE factual task — it goes in the auto-merged PR). Keep CHANGELOG.md living, in [Keep a Changelog](https://keepachangelog.com/) format with the newest content at the top under \`## [Unreleased]\`. (a) Enumerate PRs merged to master since the last CHANGELOG update — \`gh pr list --repo $REPO --state merged --base master --limit 60 --json number,title,mergedAt,labels\` — and compare against what CHANGELOG.md already lists. (b) For each genuinely user-facing change not yet recorded (new capability, behavior/API change, notable fix — SKIP purely internal loop/CI/priorities-refresh churn), add a concise entry under the right \`### Added\` / \`### Changed\` / \`### Fixed\` / \`### Documentation\` subheading of \`## [Unreleased]\`, phrased for a user (what it does, which package), not a commit subject. (c) If a new \`v6.MINOR.PATCH\` tag has been cut since the last run (\`git fetch --tags --force\`; compare the newest \`v6.*\` tag to the versions already in CHANGELOG.md), RENAME the current \`## [Unreleased]\` heading to \`## [MINOR.PATCH] - <Month YYYY>\` for that tag and open a fresh empty \`## [Unreleased]\` above it. Keep it accurate — do not invent entries; if nothing user-facing merged, leave [Unreleased] as-is.
CHANGELOG BLOG POST (blog voice — open a PR but do NOT auto-merge; leave it for the human). If — and only if — enough user-facing work has accumulated since the last changelog post to be worth reading (a meaningful batch, roughly a week's worth; do NOT post an almost-empty update every day), draft a short 'What's new in Go Micro' post that narrates what shipped in plain language (grouped by theme, linking the docs/examples, closing with install/upgrade). Create it as the next-numbered file in \`internal/website/blog/\` (find the highest N, use N+1), mirroring the frontmatter (layout/title/permalink/description) and the post-nav 'previous post' link of the latest existing post, and add an entry at the TOP of \`internal/website/blog/index.html\`. Base it strictly on the CHANGELOG — no speculation.
THEN do all of these: (A) post a concise findings report as a comment on this issue (#$ISSUE_NUM) — what is aligned, what drifted, what you fixed, the CHANGELOG entries you added, whether you drafted a changelog post (and why / why not), and any other blog ideas. (B) Open ONE auto-merging PR for the SAFE factual work only — coherence/crispness fixes AND the CHANGELOG.md update (NOT brand/marketing/positioning rewrites, NOT the blog post): \`git switch -c codex/devrel-$ISSUE_NUM\`, \`git push -u origin codex/devrel-$ISSUE_NUM\`, \`gh pr create --base master --label codex --title \"<title>\" --body \"<summary, including 'Closes #$ISSUE_NUM'>\"\`, then \`gh pr merge --squash --auto --delete-branch\`. (C) If you drafted a changelog blog post, open it as a SEPARATE PR on its own branch (\`codex/devrel-blog-$ISSUE_NUM\`) with a title prefixed 'blog:' and do NOT enable auto-merge — leave it open for the human to review and merge. Do the same (separate, non-auto-merged PR or just a report note) for any brand/positioning copy. Do not use the make_pr tool (it is a no-op stub). If you touch code, verify go build/test/golangci-lint. Stay out of breaking public-API changes."
-60
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@@ -1,60 +0,0 @@
name: "Loop: Planner"
# Generated by `micro loop init`. A dispatch role of the autonomous loop: on a
# cadence it opens a fresh tracking issue and posts the instruction in
# .github/loop/prompts/planner.md to the agent (@codex).
#
# The workflow is the MECHANISM; that prompt file is the editable POLICY —
# change what this role does by editing the prompt, not this YAML. A FRESH
# issue per run is deliberate: agents derive the PR branch name from the
# triggering issue, so reusing one tracker collapses every run onto one branch.
#
# Gated on CODEX_TRIGGER_TOKEN: the agent ignores @mentions from the
# github-actions bot, so dispatch posts as a real user (a PAT). No token → no-op.
on:
workflow_dispatch: {}
schedule:
- cron: "59 * * * *"
permissions:
issues: write
concurrency:
group: loop-planner
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch planner
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (the agent ignores bot @mentions)."
exit 0
fi
PROMPT=".github/loop/prompts/planner.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: planning review #$RUN_NUMBER" \
--body "Autonomous planner pass. Direction: .github/loop/NORTH_STAR.md; queue: .github/loop/PRIORITIES.md.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching planner."
# The prompt file is the policy; strip its editorial <!-- --> header and
# substitute the tracking issue number (__ISSUE__) at runtime.
{
echo "@codex"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
+28 -28
View File
@@ -1,17 +1,19 @@
name: "Loop: Release"
name: "Loop: Release (daily patch)"
# Generated by `micro loop init`. Cuts the next PATCH tag
# (vMAJOR.MINOR.PATCH+1) when the default branch has new commits
# since the latest such tag, and pushes it with a PAT (CODEX_TRIGGER_TOKEN) so any
# tag-triggered release workflow fires. Minor/major bumps stay with a human.
# Keeps the installable framework tracking the loop's daily improvements. Once a
# day, if master has new commits since the latest v6 tag, this cuts the next
# PATCH release (v6.MINOR.PATCH+1) and pushes the tag — which triggers the
# existing goreleaser workflow (release.yml, tag-triggered) to build the release,
# binaries, and images.
#
# The tag MUST be pushed with a PAT, not the default GITHUB_TOKEN: a tag pushed
# by GITHUB_TOKEN does not trigger other workflows (Actions blocks that recursion).
# The tag is pushed with a PAT (CODEX_TRIGGER_TOKEN), NOT the default GITHUB_TOKEN:
# a tag pushed by GITHUB_TOKEN would not trigger release.yml (Actions blocks that
# recursion). Minor/major bumps stay with the human (notable / breaking releases).
on:
workflow_dispatch: {}
schedule:
- cron: "0 23 * * *"
- cron: "0 23 * * *" # daily 23:00 UTC — captures the day's merges (tunable)
permissions:
contents: read
@@ -27,41 +29,39 @@ jobs:
- uses: actions/checkout@v4
with:
fetch-depth: 0 # need full history + all tags
# Do NOT persist the default GITHUB_TOKEN as a git credential: it would
# be sent on the PAT push below and override it, so the tag push would
# authenticate as github-actions[bot] and 403. Letting the PAT in the
# push URL be the only credential is the whole point.
persist-credentials: false
- name: Cut the next patch tag if there are new commits
- name: Cut the next patch release if there are new commits
env:
RELEASE_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN }}
REPO: ${{ github.repository }}
run: |
if [ -z "$RELEASE_TOKEN" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping."
echo "A tag pushed by the default GITHUB_TOKEN would not trigger the"
echo "goreleaser workflow, so a user PAT is required to cut releases."
exit 0
fi
git fetch --tags --force
LATEST=$(git tag --list 'v*.*.*' --sort=-v:refname | head -1)
LATEST=$(git tag --list 'v6.*.*' --sort=-v:refname | head -1)
if [ -z "$LATEST" ]; then
echo "no vMAJOR.MINOR.PATCH tag found — aborting so nothing weird gets tagged."
echo "no v6.x.x tag found — aborting so nothing weird gets tagged."
exit 1
fi
echo "latest tag: $LATEST"
echo "latest release tag: $LATEST"
COUNT=$(git rev-list --count "$LATEST"..HEAD)
echo "commits since $LATEST: $COUNT"
echo "commits on HEAD since $LATEST: $COUNT"
if [ "$COUNT" -eq 0 ]; then
echo "no new commits since $LATEST — no release."
echo "no new commits since $LATEST — no release today."
exit 0
fi
ver="${LATEST#v}"
major="${ver%%.*}"
rest="${ver#*.}"
minor="${rest%%.*}"
patch="${rest#*.}"
# Bump the patch: v6.MINOR.PATCH -> v6.MINOR.(PATCH+1)
ver="${LATEST#v}" # 6.3.10
major="${ver%%.*}" # 6
rest="${ver#*.}" # 3.10
minor="${rest%%.*}" # 3
patch="${rest#*.}" # 10
case "$major.$minor.$patch" in
[0-9]*.[0-9]*.[0-9]*) ;;
*) echo "unexpected tag shape: $LATEST" ; exit 1 ;;
@@ -69,8 +69,8 @@ jobs:
NEXT="v${major}.${minor}.$((patch + 1))"
echo "cutting: $NEXT ($COUNT commits since $LATEST)"
git config user.name "loop release bot"
git config user.email "noreply@users.noreply.github.com"
git tag -a "$NEXT" -m "Release $NEXT — automated patch ($COUNT commits since $LATEST)"
git config user.name "go-micro release bot"
git config user.email "noreply@go-micro.dev"
git tag -a "$NEXT" -m "Release $NEXT — automated daily patch ($COUNT commits since $LATEST)"
git push "https://x-access-token:${RELEASE_TOKEN}@github.com/${REPO}.git" "$NEXT"
echo "Pushed $NEXT."
echo "Pushed $NEXT. goreleaser (release.yml) will build and publish it."
-60
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@@ -1,60 +0,0 @@
name: "Loop: Security"
# Generated by `micro loop init`. A dispatch role of the autonomous loop: on a
# cadence it opens a fresh tracking issue and posts the instruction in
# .github/loop/prompts/security.md to the agent (@codex).
#
# The workflow is the MECHANISM; that prompt file is the editable POLICY —
# change what this role does by editing the prompt, not this YAML. A FRESH
# issue per run is deliberate: agents derive the PR branch name from the
# triggering issue, so reusing one tracker collapses every run onto one branch.
#
# Gated on CODEX_TRIGGER_TOKEN: the agent ignores @mentions from the
# github-actions bot, so dispatch posts as a real user (a PAT). No token → no-op.
on:
workflow_dispatch: {}
schedule:
- cron: "0 6 * * 1"
permissions:
issues: write
concurrency:
group: loop-security
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch security
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (the agent ignores bot @mentions)."
exit 0
fi
PROMPT=".github/loop/prompts/security.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: security review #$RUN_NUMBER" \
--body "Autonomous security pass. Direction: .github/loop/NORTH_STAR.md; queue: .github/loop/PRIORITIES.md.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching security."
# The prompt file is the policy; strip its editorial <!-- --> header and
# substitute the tracking issue number (__ISSUE__) at runtime.
{
echo "@codex"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
+33 -31
View File
@@ -1,57 +1,59 @@
name: "Loop: Triage"
name: "Loop: Triage (Evaluator feedback)"
# Generated by `micro loop init`. The feedback path of the evaluator: when a CI
# workflow (Harness (E2E), Lint, Run Tests) fails on a non-PR run, dispatch the agent
# (@codex) with the instruction in .github/loop/prompts/triage.md
# to root-cause the failure and file scoped fix issues back into the queue — so
# failures become fixes with no human in the middle. Gated on CODEX_TRIGGER_TOKEN.
# Closes the autonomous loop's feedback path: when the live provider-conformance
# harness fails, dispatch Codex to TRIAGE the failing run and file scoped, deduped
# issues that the hourly increment loop then fixes — no human in the middle. It
# only triages the scheduled/manual live run (not every push/PR mock run), dedupes
# against open issues so hourly repeats don't spam, ignores transient flakes, and
# ESCALATES anything needing a breaking/architectural change as needs-human rather
# than auto-building it.
#
# Gated on CODEX_TRIGGER_TOKEN like the rest of the loop (Codex ignores comments
# authored by the github-actions bot).
#
# Note: Codex is serial, so this competes with the hourly increment + architect
# dispatches for the single task slot. If it saturates, lower the harness cadence
# or gate this to a slower schedule.
on:
workflow_run:
workflows: ["Harness (E2E)", "Lint", "Run Tests"]
workflows: ["Harness (E2E)"]
types: [completed]
permissions:
issues: write
concurrency:
group: loop-triage
group: harness-triage
cancel-in-progress: false
jobs:
triage:
# Only real failures on branch pushes/schedules — not PR-run failures, which
# the PR author already sees.
if: ${{ github.event.workflow_run.conclusion == 'failure' && github.event.workflow_run.event != 'pull_request' }}
runs-on: ubuntu-latest
# Only when the harness actually failed, and only for the scheduled or manual
# live run — never the per-push/PR mock run.
if: github.event.workflow_run.conclusion == 'failure' && (github.event.workflow_run.event == 'schedule' || github.event.workflow_run.event == 'workflow_dispatch')
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch triage
- name: Open a triage issue and dispatch Codex
env:
GH_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN || github.token }}
HAS_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
HAS_TRIGGER_TOKEN: ${{ secrets.CODEX_TRIGGER_TOKEN != '' }}
REPO: ${{ github.repository }}
RUN_ID: ${{ github.event.workflow_run.id }}
RUN_URL: ${{ github.event.workflow_run.html_url }}
WORKFLOW_NAME: ${{ github.event.workflow_run.name }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping."
if [ "$HAS_TRIGGER_TOKEN" != "true" ]; then
echo "CODEX_TRIGGER_TOKEN is not set — skipping (Codex ignores Actions-bot comments)."
exit 0
fi
PROMPT=".github/loop/prompts/triage.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
# Ensure the escalation label exists (idempotent).
gh label create needs-human --repo "$REPO" --color FBCA04 \
--description "Requires a human/architect decision (breaking or architectural)" --force || true
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: triage failed run $RUN_ID ($WORKFLOW_NAME)" \
--body "The '$WORKFLOW_NAME' workflow failed on a non-PR run: $RUN_URL")
--title "Harness failure triage: run $RUN_ID" \
--body "Automated triage of a failed live provider-conformance harness run: $RUN_URL")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching triage."
{
echo "@codex"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" -e "s#__RUNURL__#$RUN_URL#g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
echo "Opened triage issue #$ISSUE_NUM — dispatching Codex."
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body \
"@codex Act as failure triage for the autonomous loop. The live provider-conformance harness failed: $RUN_URL (run id $RUN_ID). Do this, and do NOT change code or open a PR — triage only: (1) Read the failing logs (\`gh run view $RUN_ID --repo $REPO --log-failed\`) and the provider-conformance artifact/summary. (2) Root-cause each DISTINCT failure. (3) DEDUPE against existing work — list open issues (\`gh issue list --repo $REPO --label codex --state open --limit 100\`); if a matching issue already exists for a failure, add a one-line 'recurred in $RUN_URL' comment to it and do NOT open a duplicate. (4) For each genuine, self-contained, CI-verifiable defect that is NOT already tracked, open a scoped issue: \`gh issue create --repo $REPO --label codex --label enhancement --title \"<scoped task>\" --body \"<root cause, scope, acceptance criteria, and the failing run link>\"\` — the hourly increment loop will build it. (5) If a failure is transient/flaky and not a code defect (e.g. a live-model latency timeout or provider outage), note it in a comment and file NOTHING. (6) If a real fix would require a breaking public-API change or an architectural change, do NOT file it as an auto-buildable task — open an issue labeled \`needs-human\` describing it for the architect/human. When finished, close this triage issue (\`gh issue close $ISSUE_NUM\`)."
-1
View File
@@ -62,7 +62,6 @@ examples/mcp/hello/hello
/plan-delegate
/agent-plan-delegate
/micro-mcp-gateway
/agent-ollama
# Local Jekyll / Bundler artifacts
internal/website/.bundle/
-42
View File
@@ -16,49 +16,7 @@ next version when it ships.
## [Unreleased]
## [6.3.14] - July 2026
### Added
- **MiniMax provider** — run agents against MiniMax's `MiniMax-M3` model via its OpenAI-compatible endpoint, with tool calling and streaming; auto-detected from the base URL. (`ai/minimax/`)
- **`micro loop` security role** — a new opt-in loop role (`--roles …,security`) that periodically audits a repo for vulnerabilities and files `security` issues. It is deliberately conservative: it never auto-merges fixes and never publishes exploit detail in public issues (responsible disclosure), and risky fixes are marked `needs-human`. go-micro now runs it against its own attack surface (MCP/A2A gateways, x402, auth, provider URLs, agent tool loop, deps). (`cmd/micro/loop/`)
- **Agent run tracing** — agent model streaming and run-event kinds now emit richer trace detail for debugging agent execution. (`agent/`)
### Changed
- **Agent memory** — streamed agent replies are persisted in conversation memory so later turns can reference streamed responses. (`agent/`)
### Fixed
- **Plan/delegate completion** — agents now continue unfinished plan steps more reliably, fail checkpointed runs that leave delegated plans unfinished, recover from unknown plan-delegate tool calls, avoid duplicate side effects, and complete timeout paths deterministically. (`agent/`)
- **AtlasCloud tool calls** — streaming and request fallback handling now recovers tool-call results from provider responses that omit the expected structured fields. (`ai/atlascloud/`)
- **Agent preflight diagnostics** — provider setup failures now surface more actionable errors before an agent run starts. (`agent/`)
- **A2A fallback streams** — fallback stream validation is stricter for malformed or incomplete A2A streaming responses. (`gateway/a2a/`)
- **File-store test isolation** — file-store expiry and table tests are less timing-sensitive and isolate their state more reliably. (`store/file/`)
### Documentation
- **First-agent debugging path** — docs now include no-secret transcript checkpoints, durable resume examples, and clearer CLI/website wayfinding for first-agent debugging. (`README.md`, `internal/website/docs/`, `examples/agent-durable/`)
---
## [6.3.13] - July 2026
### Added
- **`micro loop`** — scaffold an autonomous improvement loop into any repository: GitHub Actions workflows dispatched to an @mention-driven coding agent, across up to five roles — `planner` (ranked queue), `builder` (top item as a single-concern PR, auto-merged on green CI), `triage` (CI failures → fix issues), and opt-in `coherence` (docs/CHANGELOG alignment) and `release` (daily patch tag). Each dispatch role's instruction lives in an editable `.github/loop/prompts/<role>.md` file — the workflow is the mechanism, the prompt is the policy — so a repo customizes behavior without forking the CLI. `micro loop init --roles …` writes it all; `micro loop verify` checks the wiring. This is the loop that maintains go-micro itself, generalized. (`cmd/micro/loop/`)
### Changed
- **x402 payments** — settlement now covers CDP facilitator authentication and conformance edge cases. (`wrapper/x402/`)
### Fixed
- **Plan/delegate harnessing** — side effects and notifications are now idempotent and deterministic across duplicate, alias, order-scoped, and reachability scenarios. (`agent/`, `internal/harness/`)
### Documentation
- **First-agent on-ramp** — quickstart docs now connect the no-secret first-agent transcript, example map, and 0→hero path. (`README.md`, `internal/website/docs/`)
- **Ollama provider docs** — the provider surface, capability matrix, and examples now document local and cloud behavior. (`internal/website/docs/`, `examples/agent-ollama/`)
---
## [6.3.12] - July 2026
### Added
- **Ollama provider** — run agents against open-weight models locally (`/api/chat`, NDJSON streaming) or via Ollama Cloud (OpenAI-compatible `/v1/chat/completions`, SSE), auto-detected from the base URL, with tool calling in both modes. Point any agent at a non-default endpoint with the new `agent.BaseURL` / `micro.AgentBaseURL` option. (`ai/ollama/`, `examples/agent-ollama/`)
- **Retrieval-backed agent memory** — agents can recall relevant prior turns by similarity, not just the recent window, with a summarizer hook that compacts older history so long conversations stay in budget. (`agent/`)
- **Scheduled flows** — a flow can run an agent (or any step) on a cron-style schedule, with the dispatch traced end to end. (`flow/`)
- **Flow verification/grader loop** — a workflow can grade its own step output against a rubric and retry until it passes, plus run-trace analysis to surface where a flow spends its time. (`flow/`)
+1 -8
View File
@@ -8,7 +8,7 @@ LDFLAGS = -X $(GIT_IMPORT).BuildDate=$(BUILD_DATE) -X $(GIT_IMPORT).GitCommit=$(
# GORELEASER_DOCKER_IMAGE = ghcr.io/goreleaser/goreleaser-cross:v1.25.7
GORELEASER_DOCKER_IMAGE = ghcr.io/goreleaser/goreleaser:latest
.PHONY: test test-race test-coverage harness install-smoke provider-conformance-mock provider-conformance lint fmt install-tools proto clean help gorelease-dry-run gorelease-dry-run-docker
.PHONY: test test-race test-coverage harness provider-conformance-mock provider-conformance lint fmt install-tools proto clean help gorelease-dry-run gorelease-dry-run-docker
# Default target
help:
@@ -19,7 +19,6 @@ help:
@echo " make test-coverage - Run tests with coverage"
@echo " make lint - Run linter"
@echo " make harness - Run deterministic getting-started and end-to-end harnesses"
@echo " make install-smoke - Verify the local install.sh and first-run CLI smoke path"
@echo " make provider-conformance-mock - Run cross-provider harness with deterministic mock provider"
@echo " make provider-conformance - Run harnesses against configured live providers"
@echo " make fmt - Format code"
@@ -49,17 +48,11 @@ test-coverage:
# This mirrors the default CI path so local dogfooding catches scaffold,
# run/chat/inspect, and 0→hero regressions before a PR is opened.
harness:
$(MAKE) install-smoke
go test ./cmd/micro/cli/new -run TestZeroToOne -count=1
./internal/harness/zero-to-hero-ci/run.sh
go run ./internal/harness/agent-flow
$(MAKE) provider-conformance-mock
# Verify the documented install script and first-run CLI command boundaries without
# provider keys or network access.
install-smoke:
./internal/harness/install-smoke/run.sh
# Run the shared provider conformance contract with the deterministic mock
# provider. This is the no-secret path used by CI and local dogfooding to keep
# provider-facing agent/tool semantics covered on every machine.
+3 -31
View File
@@ -25,7 +25,6 @@ Running Go Micro in production, or building on it and want help? Paid **support,
## Contents
- [Quick Start](#quick-start)
- [First agent on-ramp](#first-agent-on-ramp)
- [Why an Agent Harness](#why-an-agent-harness)
- [Writing Services](#writing-services)
- [Building Agents](#building-agents) — [Plan & Delegate](#plan--delegate), [Pluggable](#batteries-included-pluggable), [Paid tools (x402)](#paid-tools-x402), [A2A](#reachable-by-other-agents-a2a)
@@ -67,38 +66,14 @@ curl -X POST http://localhost:8080/api/helloworld/Helloworld.Call \
-H 'Content-Type: application/json' -d '{"name":"World"}'
```
This install → scaffold → run → call path is covered by no-secret CI harnesses. To
verify just the local installer and first-run CLI boundaries without network
access or provider keys, use:
```bash
make install-smoke
```
To run the broader local contract (including the [0→hero services → agents → workflows path](internal/website/docs/guides/zero-to-hero.md),
This scaffold → run → call path is covered by the no-secret CI harness. To run
the same local contract (including the [0→hero services → agents → workflows path](internal/website/docs/guides/zero-to-hero.md),
chat/inspect CLI boundaries, and deploy dry-run), use:
```bash
make harness
```
### First agent on-ramp
After install and the first `micro new`/`micro run` smoke check, take the
walkable agent path in this order:
1. [Smallest first-agent example](examples/first-agent/) — run one service-backed agent with a mock model and no provider key.
2. [No-secret first-agent transcript](internal/website/docs/guides/no-secret-first-agent.md) — run the
maintained support agent with a mock model and see services → agents → workflows succeed without a key.
3. [Your First Agent](internal/website/docs/guides/your-first-agent.md) — build a
service-backed agent and talk to it with `micro chat`.
4. [Debugging your agent](internal/website/docs/guides/debugging-agents.md) — use
`micro agent inspect`, run history, memory, and provider checks when the first
conversation does something unexpected.
5. [0→hero Reference](internal/website/docs/guides/zero-to-hero.md) — complete the
services → agents → workflows loop with scaffold, run, chat, inspect, flow
history, and deploy dry-run commands that match the maintained harness.
### Generate from a prompt — with an LLM key
Set a provider key, describe what you want, and the AI designs services, writes handlers, compiles, and starts them:
@@ -333,7 +308,7 @@ MCP exposes your services as tools; A2A exposes your agents as agents. See the [
| MCP gateway | Every endpoint is an AI tool automatically |
| A2A gateway | Every agent is reachable over the Agent2Agent protocol; cards generated from the registry (`micro a2a`) |
| Payments (x402) | Opt-in per-call payments for tools via the x402 standard; pluggable facilitator (Base, Solana, …) |
| 9 LLM providers | Anthropic, OpenAI, Gemini, Groq, Mistral, Together, Atlas Cloud, MiniMax, Ollama (local + cloud) |
| 7 LLM providers | Anthropic, OpenAI, Gemini, Groq, Mistral, Together, Atlas Cloud |
| Interactive console | `micro run` includes a chat console for talking to services |
| Service generation | `micro run --prompt` — describe a system, get running services |
@@ -430,8 +405,6 @@ Swap providers with a single import — same interface everywhere:
| Mistral | `mistral-large-latest` |
| Together AI | `meta-llama/Llama-3.3-70B-Instruct-Turbo` |
| Atlas Cloud | `deepseek-ai/DeepSeek-V3-0324` |
| MiniMax | `MiniMax-M3` |
| Ollama | `llama3.2` (local) |
```go
m := ai.New("anthropic", ai.WithAPIKey(key))
@@ -444,7 +417,6 @@ resp, _ := m.Generate(ctx, &ai.Request{Prompt: "hello"})
- [multi-service](examples/multi-service/) — Multiple services in one binary
- [mcp](examples/mcp/) — MCP integration with AI agents
- [agent-plan-delegate](examples/agent-plan-delegate/) — Agent planning and multi-agent delegation
- [agent-durable](examples/agent-durable/) — Checkpoint and resume an agent run without replaying completed tool side effects
- [grpc-interop](examples/grpc-interop/) — Call go-micro from any gRPC client
See [all examples](examples/README.md).
+47 -94
View File
@@ -34,7 +34,6 @@ import (
_ "go-micro.dev/v6/ai/gemini"
_ "go-micro.dev/v6/ai/groq"
_ "go-micro.dev/v6/ai/mistral"
_ "go-micro.dev/v6/ai/ollama"
_ "go-micro.dev/v6/ai/openai"
_ "go-micro.dev/v6/ai/together"
)
@@ -150,9 +149,6 @@ func (a *agentImpl) setupWithToolHandler(handler ai.ToolHandler) {
if a.opts.Model != "" {
modelOpts = append(modelOpts, ai.WithModel(a.opts.Model))
}
if a.opts.BaseURL != "" {
modelOpts = append(modelOpts, ai.WithBaseURL(a.opts.BaseURL))
}
// Reuse the existing tools instance: its name map is populated by
// discoverTools, and rebuilding it here would orphan a base handler that
@@ -222,16 +218,12 @@ func (a *agentImpl) Stream(ctx context.Context, message string) (ai.Stream, erro
return nil, fmt.Errorf("discover tools: %w", err)
}
a.mem.Add("user", message)
stream, err := a.model.Stream(ctx, &ai.Request{
return a.model.Stream(ctx, &ai.Request{
Prompt: message,
SystemPrompt: a.buildPrompt(),
Tools: toolList,
Messages: a.mem.Messages(),
})
if err != nil {
return nil, err
}
return &memoryRecordingStream{stream: stream, memory: a.mem}, nil
}
// Pending returns checkpointed agent runs that have not completed. It mirrors
@@ -297,78 +289,57 @@ func (a *agentImpl) askLocked(ctx context.Context, runID, message, parentRunID s
}
}
const maxPlanCompletionTurns = 3
var resp *ai.Response
for planCompletionTurn := 0; ; planCompletionTurn++ {
resp, err = ai.GenerateWithRetry(ctx, a.model, &ai.Request{
Prompt: message,
SystemPrompt: a.buildPrompt(),
Tools: toolList,
Messages: messages,
}, ai.GeneratePolicy{
Timeout: a.opts.ModelTimeout,
MaxAttempts: a.opts.ModelMaxAttempts,
Backoff: a.opts.ModelRetryBackoff,
})
if err != nil {
run.Status = agentRunFailureStatus(err)
err = agentOperationalError(err)
if a.currentRun != nil {
run.Steps = a.currentRun.Steps
}
if len(run.Steps) == 0 {
run.Steps = []flow.StepRecord{{Name: agentAskStep}}
}
run.Steps[0].Status = run.Status
run.Steps[0].Error = err.Error()
_ = a.saveRun(ctx, run)
resp, err := ai.GenerateWithRetry(ctx, a.model, &ai.Request{
Prompt: message,
SystemPrompt: a.buildPrompt(),
Tools: toolList,
Messages: messages,
}, ai.GeneratePolicy{
Timeout: a.opts.ModelTimeout,
MaxAttempts: a.opts.ModelMaxAttempts,
Backoff: a.opts.ModelRetryBackoff,
})
if err != nil {
run.Status = agentRunFailureStatus(err)
if a.currentRun != nil {
run.Steps = a.currentRun.Steps
}
if len(run.Steps) == 0 {
run.Steps = []flow.StepRecord{{Name: agentAskStep}}
}
run.Steps[0].Status = run.Status
run.Steps[0].Error = err.Error()
_ = a.saveRun(ctx, run)
return nil, err
}
if a.pause != nil && a.opts.Checkpoint != nil {
run.Status = "paused"
run.State.Stage = agentApprovalStep
run.State.Data = []byte(message)
if a.pause.Tool == toolHumanInput {
run.State.Stage = agentInputStep
_ = run.State.Set(inputPause{OriginalMessage: message, Prompt: a.pause.Message})
}
run.Steps[0].Status = "paused"
run.Steps[0].Error = a.pause.Message
run.Steps[0].Result = a.pause.Tool
if err := a.saveRun(ctx, run); err != nil {
return nil, err
}
if a.pause != nil && a.opts.Checkpoint != nil {
run.Status = "paused"
run.State.Stage = agentApprovalStep
run.State.Data = []byte(message)
if a.pause.Tool == toolHumanInput {
run.State.Stage = agentInputStep
_ = run.State.Set(inputPause{OriginalMessage: message, Prompt: a.pause.Message})
}
run.Steps[0].Status = "paused"
run.Steps[0].Error = a.pause.Message
run.Steps[0].Result = a.pause.Tool
if err := a.saveRun(ctx, run); err != nil {
return nil, err
}
return nil, fmt.Errorf("agent run %s paused for approval: %s", run.ID, a.pause.Message)
}
return nil, fmt.Errorf("agent run %s paused for approval: %s", run.ID, a.pause.Message)
}
if len(resp.ToolCalls) == 0 {
if calls, answer, ok := a.executeTextToolCalls(ctx, resp.Reply, toolList); ok {
resp.ToolCalls = calls
if resp.Answer == "" {
resp.Answer = answer
}
trimmedReply := strings.TrimSpace(resp.Reply)
if strings.HasPrefix(trimmedReply, "{") || strings.HasPrefix(trimmedReply, "[") || strings.HasPrefix(trimmedReply, "```") {
resp.Reply = ""
}
if len(resp.ToolCalls) == 0 {
if calls, answer, ok := a.executeTextToolCalls(ctx, resp.Reply, toolList); ok {
resp.ToolCalls = calls
if resp.Answer == "" {
resp.Answer = answer
}
trimmedReply := strings.TrimSpace(resp.Reply)
if strings.HasPrefix(trimmedReply, "{") || strings.HasPrefix(trimmedReply, "[") || strings.HasPrefix(trimmedReply, "```") {
resp.Reply = ""
}
}
if a.opts.Checkpoint != nil {
if unfinished := a.unfinishedPlanSteps(); len(unfinished) > 0 && planCompletionTurn < maxPlanCompletionTurns {
if resp.Reply != "" {
a.mem.Add("assistant", resp.Reply)
}
if resp.Answer != "" {
a.mem.Add("assistant", resp.Answer)
}
message = "Continue the run. These plan steps are still unfinished and must be completed before a final answer: " + strings.Join(unfinished, ", ")
a.mem.Add("user", message)
messages = a.mem.Messages()
continue
}
}
break
}
if resp.Reply != "" {
@@ -393,24 +364,6 @@ func (a *agentImpl) askLocked(ctx context.Context, runID, message, parentRunID s
RunID: a.runID,
ParentID: parentRunID,
}
if a.opts.Checkpoint != nil {
if unfinished := a.unfinishedPlanSteps(); len(unfinished) > 0 {
err = fmt.Errorf("agent run %s has unfinished plan steps: %s", run.ID, strings.Join(unfinished, ", "))
run.Status = "failed"
run.State.Stage = agentAskStep
run.State.Data = []byte(message)
if a.currentRun != nil {
run.Steps = a.currentRun.Steps
}
if len(run.Steps) == 0 {
run.Steps = []flow.StepRecord{{Name: agentAskStep}}
}
run.Steps[0].Status = "failed"
run.Steps[0].Error = err.Error()
_ = a.saveRun(ctx, run)
return nil, err
}
}
run.Status = "done"
run.State.Stage = ""
if b, marshalErr := json.Marshal(res); marshalErr == nil {
+1 -67
View File
@@ -290,11 +290,7 @@ func (a *agentImpl) planWrap(next ai.ToolHandler) ai.ToolHandler {
if call.Name == toolPlan {
return a.handlePlan(call)
}
res := next(ctx, call)
if res.Refused == "" && toolErrorMessage(res) == "" {
a.completeNextPlanStep()
}
return res
return next(ctx, call)
}
}
@@ -372,68 +368,6 @@ func (a *agentImpl) handlePlan(call ai.ToolCall) ai.ToolResult {
return ai.ToolResult{ID: call.ID, Value: call.Input, Content: string(data)}
}
func (a *agentImpl) completeNextPlanStep() {
plan := a.loadPlan()
if plan == "" {
return
}
var data map[string]any
if err := json.Unmarshal([]byte(plan), &data); err != nil {
return
}
steps, ok := data["steps"].([]any)
if !ok {
return
}
for _, raw := range steps {
step, ok := raw.(map[string]any)
if !ok {
continue
}
status, _ := step["status"].(string)
if status == "" || status == "pending" || status == "in_progress" {
step["status"] = "done"
b, err := json.Marshal(data)
if err == nil {
_ = a.stateStore().Write(&store.Record{Key: planKey, Value: b})
}
return
}
}
}
func (a *agentImpl) unfinishedPlanSteps() []string {
plan := a.loadPlan()
if plan == "" {
return nil
}
var data map[string]any
if err := json.Unmarshal([]byte(plan), &data); err != nil {
return nil
}
steps, ok := data["steps"].([]any)
if !ok {
return nil
}
var unfinished []string
for _, raw := range steps {
step, ok := raw.(map[string]any)
if !ok {
continue
}
status, _ := step["status"].(string)
if status != "" && status != "pending" && status != "in_progress" {
continue
}
task, _ := step["task"].(string)
if task == "" {
task = "<unnamed>"
}
unfinished = append(unfinished, task)
}
return unfinished
}
// handleHumanInput records that the model needs operator input before it can continue.
func (a *agentImpl) handleHumanInput(call ai.ToolCall) ai.ToolResult {
prompt, _ := call.Input["prompt"].(string)
-37
View File
@@ -191,43 +191,6 @@ func agentRunFailureStatus(err error) string {
}
}
type operationalError struct {
err error
hint string
}
func (e *operationalError) Error() string {
if e == nil {
return ""
}
return e.err.Error() + "; " + e.hint
}
func (e *operationalError) Unwrap() error {
if e == nil {
return nil
}
return e.err
}
func agentOperationalError(err error) error {
if err == nil {
return nil
}
switch ai.ClassifyError(err) {
case ai.ErrorKindCanceled:
return &operationalError{err: err, hint: "agent run canceled; inspect run history with `micro inspect agent <name> --status canceled` or see docs/guides/debugging-agents.md"}
case ai.ErrorKindTimeout:
return &operationalError{err: err, hint: "agent provider call timed out; inspect run history with `micro inspect agent <name> --status timeout`, then adjust AgentModelCallTimeout/AgentModelRetry or see docs/guides/debugging-agents.md"}
case ai.ErrorKindRateLimited:
return &operationalError{err: err, hint: "agent provider was rate limited; inspect run history with `micro inspect agent <name> --status rate_limited`, check provider keys with `micro agent preflight`, or see docs/guides/debugging-agents.md"}
case ai.ErrorKindUnavailable:
return &operationalError{err: err, hint: "agent provider appears temporarily unavailable; retry with bounded AgentModelRetry and verify provider setup with `micro agent preflight` or docs/guides/debugging-agents.md"}
default:
return err
}
}
func (a *agentImpl) checkpointToolWrap(next ai.ToolHandler) ai.ToolHandler {
return func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
if a.opts.Checkpoint == nil || a.currentRun == nil {
-117
View File
@@ -7,10 +7,7 @@ import (
"testing"
"go-micro.dev/v6/ai"
"go-micro.dev/v6/client"
codecBytes "go-micro.dev/v6/codec/bytes"
"go-micro.dev/v6/flow"
"go-micro.dev/v6/registry"
"go-micro.dev/v6/store"
)
@@ -105,120 +102,6 @@ func TestResumeFailedCheckpointDoesNotReplayCompletedTool(t *testing.T) {
}
}
func TestCheckpointSkipsDuplicateToolWithinAsk(t *testing.T) {
ctx := context.Background()
cp := flow.StoreCheckpoint(store.NewMemoryStore(), "tool-dedupe-agent")
toolRuns := 0
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
if opts.ToolHandler == nil {
t.Fatal("missing tool handler")
}
opts.ToolHandler(ctx, ai.ToolCall{ID: "plan-1", Name: toolPlan, Input: map[string]any{
"steps": []any{
map[string]any{"task": "create Design task", "status": "pending"},
},
}})
for i := 0; i < 3; i++ {
res := opts.ToolHandler(ctx, ai.ToolCall{ID: "call-1", Name: "external.create", Input: map[string]any{"title": "Design"}})
if res.Content != "created Design" {
t.Fatalf("tool result %d = %q, want cached created Design", i, res.Content)
}
}
return &ai.Response{Reply: "done"}, nil
}
defer func() { fakeGen = nil }()
a := newTestAgent(Name("tool-dedupe-agent"), WithCheckpoint(cp),
WithTool("external.create", "create once", nil, func(context.Context, map[string]any) (string, error) {
toolRuns++
return "created Design", nil
}))
if _, err := a.Ask(ctx, "create Design once"); err != nil {
t.Fatalf("Ask: %v", err)
}
if toolRuns != 1 {
t.Fatalf("tool executions = %d, want duplicate calls within the run replayed from checkpoint", toolRuns)
}
if plan := a.loadPlan(); !strings.Contains(plan, `"status":"done"`) {
t.Fatalf("plan = %s, want completed action marked done", plan)
}
}
func TestCheckpointContinuesRunWithUnfinishedPlanStep(t *testing.T) {
ctx := context.Background()
cp := flow.StoreCheckpoint(store.NewMemoryStore(), "unfinished-plan-agent")
reg := registry.NewMemoryRegistry()
if err := reg.Register(&registry.Service{
Name: "comms",
Metadata: map[string]string{"type": "agent"},
Nodes: []*registry.Node{{Id: "comms-1", Address: "127.0.0.1:0"}},
}); err != nil {
t.Fatalf("register comms agent: %v", err)
}
delegateCalls := 0
fc := &fakeClient{Client: client.DefaultClient}
fc.callFn = func(ctx context.Context, req client.Request, rsp interface{}) error {
delegateCalls++
if req.Service() != "comms" || req.Endpoint() != "Agent.Chat" {
t.Fatalf("delegate RPC = %s %s, want comms Agent.Chat", req.Service(), req.Endpoint())
}
frame := rsp.(*codecBytes.Frame)
frame.Data = []byte(`{"reply":"owner notified","agent":"comms"}`)
return nil
}
modelCalls := 0
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
modelCalls++
if opts.ToolHandler == nil {
t.Fatal("missing tool handler")
}
switch modelCalls {
case 1:
opts.ToolHandler(ctx, ai.ToolCall{ID: "plan-1", Name: toolPlan, Input: map[string]any{
"steps": []any{
map[string]any{"task": "create launch tasks", "status": "done"},
map[string]any{"task": "delegate readiness notification to comms", "status": "in_progress"},
},
}})
return &ai.Response{Reply: "tasks are ready"}, nil
case 2:
if !strings.Contains(req.Prompt, "delegate readiness notification to comms") {
t.Fatalf("continuation prompt = %q, want unfinished step", req.Prompt)
}
res := opts.ToolHandler(ctx, ai.ToolCall{ID: "delegate-1", Name: toolDelegate, Input: map[string]any{"task": "Notify owner@acme.com that the launch plan is ready", "to": "comms"}})
if !strings.Contains(res.Content, "owner notified") {
t.Fatalf("delegate result = %q, want owner notified", res.Content)
}
return &ai.Response{Reply: "all done"}, nil
default:
t.Fatalf("unexpected model call %d", modelCalls)
return nil, nil
}
}
defer func() { fakeGen = nil }()
a := newTestAgent(Name("unfinished-plan-agent"), WithCheckpoint(cp), WithRegistry(reg), WithClient(fc))
resp, err := a.Ask(ctx, "create tasks and notify owner")
if err != nil {
t.Fatalf("Ask: %v", err)
}
if resp.Reply != "all done" {
t.Fatalf("reply = %q, want final continuation reply", resp.Reply)
}
if modelCalls != 2 {
t.Fatalf("model calls = %d, want initial plus continuation", modelCalls)
}
if delegateCalls != 1 {
t.Fatalf("delegate calls = %d, want exactly one", delegateCalls)
}
if unfinished := a.unfinishedPlanSteps(); len(unfinished) != 0 {
t.Fatalf("unfinished plan steps = %v, want none", unfinished)
}
}
func TestResumeFailedCheckpointAfterFreshAgentRestart(t *testing.T) {
ctx := context.Background()
cp := flow.StoreCheckpoint(store.NewMemoryStore(), "restart-resume-agent")
+18 -136
View File
@@ -67,45 +67,30 @@ func runAgentConformanceScenario(t *testing.T, provider conformanceProvider) {
}
} else {
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
if err := validateConformanceRequest(req, opts); err != nil {
return nil, err
if req.Prompt == "" {
return nil, errors.New("missing prompt")
}
plan := opts.ToolHandler(ctx, ai.ToolCall{
ID: "fake-plan-1",
Name: "plan",
Input: map[string]any{"steps": []map[string]any{
{"description": "call conformance_echo", "status": "pending"},
{"description": "attempt guarded delegate", "status": "pending"},
}},
})
echo := opts.ToolHandler(ctx, ai.ToolCall{
if len(req.Messages) == 0 || req.Messages[len(req.Messages)-1].Role != "user" {
return nil, fmt.Errorf("missing user history: %+v", req.Messages)
}
if len(req.Tools) == 0 {
return nil, errors.New("missing tools")
}
if opts.ToolHandler == nil {
return nil, errors.New("missing tool handler")
}
res := opts.ToolHandler(ctx, ai.ToolCall{
ID: "fake-call-1",
Name: "conformance_echo",
Input: map[string]any{"value": "agent-conformance"},
})
delegate := opts.ToolHandler(ctx, ai.ToolCall{
ID: "fake-delegate-1",
Name: "delegate",
Input: map[string]any{"task": "summarize the conformance marker", "to": "blocked-reviewer"},
})
if plan.Content == "" {
return nil, errors.New("empty plan result")
}
if echo.Content == "" {
if res.Content == "" {
return nil, errors.New("empty tool result")
}
if delegate.Refused != ai.RefusedApproval {
return nil, fmt.Errorf("delegate refusal = %q, want %q", delegate.Refused, ai.RefusedApproval)
}
return &ai.Response{
Reply: "planned, called conformance_echo, and handled guarded delegate refusal",
Answer: echo.Content + " " + delegate.Content,
ToolCalls: []ai.ToolCall{
{ID: "fake-plan-1", Name: "plan", Input: map[string]any{}},
{ID: "fake-call-1", Name: "conformance_echo", Input: map[string]any{"value": "agent-conformance"}, Result: echo.Content},
{ID: "fake-delegate-1", Name: "delegate", Input: map[string]any{"task": "summarize the conformance marker", "to": "blocked-reviewer"}, Error: delegate.Content},
},
Reply: "used conformance_echo",
Answer: res.Content,
ToolCalls: []ai.ToolCall{{ID: "fake-call-1", Name: "conformance_echo", Input: map[string]any{"value": "agent-conformance"}, Result: res.Content}},
}, nil
}
defer func() { fakeGen = nil }()
@@ -113,23 +98,15 @@ func runAgentConformanceScenario(t *testing.T, provider conformanceProvider) {
var sawTool bool
var sawRunInfo bool
var sawBlockedDelegate bool
agentOpts := []Option{
Name("conformance-" + provider.name),
Provider(provider.name),
APIKey(os.Getenv(provider.key)),
Prompt("You are a conformance test agent. Create a short plan, use conformance_echo exactly once with input {\"value\":\"agent-conformance\"}, then attempt to delegate a summary to blocked-reviewer. If the delegate is refused, explain the refusal and answer with the echo result."),
Prompt("You are a conformance test agent. Use the conformance_echo tool exactly once with input {\"value\":\"agent-conformance\"}, then answer with the tool result."),
WithRegistry(registry.NewMemoryRegistry()),
WithStore(store.NewMemoryStore()),
WithMemory(NewInMemory(8)),
ModelCallTimeout(45 * time.Second),
ApproveTool(func(tool string, input map[string]any) (bool, string) {
if tool == "delegate" {
sawBlockedDelegate = true
return false, "cross-provider conformance blocks delegate side effects"
}
return true, ""
}),
WithTool("conformance_echo", "Echo a conformance value and return a deterministic marker.", map[string]any{
"value": map[string]any{"type": "string", "description": "value to echo"},
}, func(ctx context.Context, input map[string]any) (string, error) {
@@ -155,7 +132,7 @@ func runAgentConformanceScenario(t *testing.T, provider conformanceProvider) {
}
a := New(agentOpts...)
resp, err := askWithConformanceToolRetry(context.Background(), a, "Run the provider conformance check.", &sawTool)
resp, err := a.Ask(context.Background(), "Run the provider conformance check.")
if err != nil {
t.Fatalf("Ask: %v", err)
}
@@ -171,51 +148,11 @@ func runAgentConformanceScenario(t *testing.T, provider conformanceProvider) {
if !sawRunInfo {
t.Fatal("tool did not receive RunInfo")
}
if !sawBlockedDelegate {
t.Fatal("provider did not exercise the guarded delegate path")
}
if !strings.Contains(resp.Reply, "agent-conformance-ok") && !strings.Contains(resp.Reply, "agent-conformance") {
t.Fatalf("reply %q does not include conformance marker", resp.Reply)
}
}
func askWithConformanceToolRetry(ctx context.Context, a Agent, initialPrompt string, sawTool *bool) (*Response, error) {
const maxAttempts = 2
prompt := initialPrompt
var resp *Response
for attempt := 1; attempt <= maxAttempts; attempt++ {
var err error
resp, err = a.Ask(ctx, prompt)
if err != nil {
return nil, err
}
if sawTool != nil && *sawTool {
return resp, nil
}
if attempt == maxAttempts {
break
}
prompt = "The previous response did not call the required conformance_echo tool. Retry the same conformance check now: you must call conformance_echo exactly once with input {\"value\":\"agent-conformance\"} before any final answer, then include the tool result marker in the final answer."
}
return resp, nil
}
func validateConformanceRequest(req *ai.Request, opts ai.Options) error {
if req.Prompt == "" {
return errors.New("missing prompt")
}
if len(req.Messages) == 0 || req.Messages[len(req.Messages)-1].Role != "user" {
return fmt.Errorf("missing user history: %+v", req.Messages)
}
if len(req.Tools) == 0 {
return errors.New("missing tools")
}
if opts.ToolHandler == nil {
return errors.New("missing tool handler")
}
return nil
}
func TestAgentProviderConformanceFakeError(t *testing.T) {
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
return nil, errors.New("conformance provider failure")
@@ -235,61 +172,6 @@ func TestAgentProviderConformanceFakeError(t *testing.T) {
}
}
func TestAgentProviderConformanceRetriesMissingTool(t *testing.T) {
var attempts int
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
attempts++
if err := validateConformanceRequest(req, opts); err != nil {
return nil, err
}
if attempts == 1 {
return &ai.Response{Reply: "I can confirm agent-conformance in prose only."}, nil
}
echo := opts.ToolHandler(ctx, ai.ToolCall{
ID: "fake-call-1",
Name: "conformance_echo",
Input: map[string]any{"value": "agent-conformance"},
})
return &ai.Response{
Reply: "called conformance_echo",
Answer: echo.Content,
ToolCalls: []ai.ToolCall{
{ID: "fake-call-1", Name: "conformance_echo", Input: map[string]any{"value": "agent-conformance"}, Result: echo.Content},
},
}, nil
}
defer func() { fakeGen = nil }()
var sawTool bool
a := New(
Name("conformance-retry"),
Provider("fake"),
WithRegistry(registry.NewMemoryRegistry()),
WithStore(store.NewMemoryStore()),
WithMemory(NewInMemory(4)),
WithTool("conformance_echo", "Echo a conformance value.", map[string]any{
"value": map[string]any{"type": "string"},
}, func(ctx context.Context, input map[string]any) (string, error) {
sawTool = true
return `{"marker":"agent-conformance-ok"}`, nil
}),
)
resp, err := askWithConformanceToolRetry(context.Background(), a, "Run the provider conformance check.", &sawTool)
if err != nil {
t.Fatalf("Ask: %v", err)
}
if attempts != 2 {
t.Fatalf("attempts = %d, want retry after missing tool", attempts)
}
if !sawTool {
t.Fatal("retry did not execute conformance_echo")
}
if !strings.Contains(resp.Reply, "agent-conformance-ok") {
t.Fatalf("Reply = %q, want tool result marker", resp.Reply)
}
}
func TestAgentExecutesProviderTextToolCallFallback(t *testing.T) {
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
if opts.ToolHandler == nil {
+1 -26
View File
@@ -2,7 +2,6 @@ package agent
import (
"context"
"io"
"strings"
"testing"
@@ -17,7 +16,6 @@ import (
// it with a deferred cleanup. Tests in this package are not parallel,
// so a package-level hook is safe.
var fakeGen func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error)
var fakeStream func(ctx context.Context, opts ai.Options, req *ai.Request) (ai.Stream, error)
type fakeModel struct{ opts ai.Options }
@@ -35,33 +33,10 @@ func (m *fakeModel) Generate(ctx context.Context, req *ai.Request, _ ...ai.Gener
return &ai.Response{Reply: "ok"}, nil
}
func (m *fakeModel) Stream(ctx context.Context, req *ai.Request, _ ...ai.GenerateOption) (ai.Stream, error) {
if fakeStream != nil {
return fakeStream(ctx, m.opts, req)
}
return &sliceStream{chunks: []string{"ok"}}, nil
return nil, nil
}
func (m *fakeModel) String() string { return "fake" }
type sliceStream struct {
chunks []string
idx int
closed bool
}
func (s *sliceStream) Recv() (*ai.Response, error) {
if s.idx >= len(s.chunks) {
return nil, io.EOF
}
chunk := s.chunks[s.idx]
s.idx++
return &ai.Response{Reply: chunk}, nil
}
func (s *sliceStream) Close() error {
s.closed = true
return nil
}
func init() {
ai.Register("fake", func(opts ...ai.Option) ai.Model {
m := &fakeModel{}
-7
View File
@@ -40,7 +40,6 @@ type Options struct {
Provider string
Model string
APIKey string
BaseURL string
Address string
Registry registry.Registry
Client client.Client
@@ -169,12 +168,6 @@ func APIKey(k string) Option {
return func(o *Options) { o.APIKey = k }
}
// BaseURL sets the base URL for the LLM provider. Use this to point
// the provider at a non-default endpoint (e.g., local Ollama, a proxy).
func BaseURL(url string) Option {
return func(o *Options) { o.BaseURL = url }
}
// Address sets the network address for the agent's service endpoint.
// Use "127.0.0.1:0" in local harnesses/tests to bind an ephemeral loopback
// port and avoid advertising the default service address.
+3 -131
View File
@@ -3,9 +3,7 @@ package agent
import (
"context"
"encoding/json"
"errors"
"fmt"
"io"
"sort"
"strings"
"time"
@@ -20,10 +18,9 @@ import (
const agentInstrumentationName = "go-micro.dev/v6/agent"
const (
spanNameRun = "agent.run"
spanNameModelCall = "agent.model.call"
spanNameModelStream = "agent.model.stream"
spanNameToolCall = "agent.tool.call"
spanNameRun = "agent.run"
spanNameModelCall = "agent.model.call"
spanNameToolCall = "agent.tool.call"
AttrRunID = "agent.run.id"
AttrParentRunID = "agent.run.parent_id"
@@ -48,7 +45,6 @@ const (
AttrFlowStep = "agent.flow.step"
AttrDispatch = "agent.dispatch"
AttrTrigger = "agent.trigger"
AttrRunEventKind = "agent.event.kind"
)
type RunEvent struct {
@@ -103,8 +99,6 @@ type RunSummary struct {
DurationMS int64 `json:"duration_ms,omitempty"`
Events int `json:"events"`
Status string `json:"status,omitempty"`
Checkpoint string `json:"checkpoint,omitempty"`
Stage string `json:"stage,omitempty"`
LastKind string `json:"last_kind,omitempty"`
LastError string `json:"last_error,omitempty"`
LastErrorKind string `json:"last_error_kind,omitempty"`
@@ -225,123 +219,6 @@ func (m *tracedModel) Generate(ctx context.Context, req *ai.Request, opts ...ai.
return resp, err
}
func (m *tracedModel) Stream(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (ai.Stream, error) {
info, _ := ai.RunInfoFrom(ctx)
provider := m.String()
model := m.Options().Model
start := time.Now()
if m.a.opts.TraceProvider == nil {
stream, err := m.Model.Stream(ctx, req, opts...)
if err != nil {
m.a.recordRunEvent(RunEvent{Time: time.Now(), RunID: info.RunID, ParentID: info.ParentID, Agent: info.Agent, Kind: "stream", Provider: provider, Model: model, Attempt: info.Attempt, MaxAttempts: info.MaxAttempts, LatencyMS: time.Since(start).Milliseconds(), Error: err.Error(), ErrorKind: string(ai.ClassifyError(err))})
return nil, err
}
return &tracedStream{Stream: stream, a: m.a, info: info, provider: provider, model: model, start: start}, nil
}
attrs := appendRunInfoAttributes([]attribute.KeyValue{
attribute.String(AttrRunID, info.RunID),
attribute.String(AttrParentRunID, info.ParentID),
attribute.String(AttrAgentName, info.Agent),
attribute.String(AttrProvider, provider),
attribute.String(AttrModel, model),
}, info)
ctx, span := m.a.tracer().Start(ctx, spanNameModelStream, trace.WithAttributes(attrs...))
stream, err := m.Model.Stream(ctx, req, opts...)
if err != nil {
dur := time.Since(start).Milliseconds()
span.SetAttributes(attribute.Int64(AttrLatencyMS, dur), attribute.String(AttrErrorKind, string(ai.ClassifyError(err))))
span.RecordError(err)
span.SetStatus(codes.Error, err.Error())
e := RunEvent{Time: time.Now(), RunID: info.RunID, ParentID: info.ParentID, Agent: info.Agent, Kind: "stream", Provider: provider, Model: model, Attempt: info.Attempt, MaxAttempts: info.MaxAttempts, LatencyMS: dur, Error: err.Error(), ErrorKind: string(ai.ClassifyError(err))}
m.a.recordSpanEvent(span, e)
span.End()
return nil, err
}
return &tracedStream{Stream: stream, a: m.a, info: info, provider: provider, model: model, start: start, span: span}, nil
}
type tracedStream struct {
ai.Stream
a *agentImpl
info ai.RunInfo
provider string
model string
start time.Time
span trace.Span
usage ai.Usage
closed bool
}
func (s *tracedStream) Recv() (*ai.Response, error) {
resp, err := s.Stream.Recv()
if resp != nil {
s.usage = mergeUsage(s.usage, resp.Usage)
}
if err != nil {
if errors.Is(err, io.EOF) {
s.finish(nil)
} else {
s.finish(err)
}
}
return resp, err
}
func (s *tracedStream) Close() error {
err := s.Stream.Close()
s.finish(err)
return err
}
func (s *tracedStream) finish(err error) {
if s.closed {
return
}
s.closed = true
dur := time.Since(s.start).Milliseconds()
e := RunEvent{Time: time.Now(), RunID: s.info.RunID, ParentID: s.info.ParentID, Agent: s.info.Agent, Kind: "stream", Provider: s.provider, Model: s.model, Attempt: s.info.Attempt, MaxAttempts: s.info.MaxAttempts, LatencyMS: dur, Tokens: s.usage}
if err != nil {
e.Error = err.Error()
e.ErrorKind = string(ai.ClassifyError(err))
}
if s.span == nil {
s.a.recordRunEvent(e)
return
}
attrs := appendUsage([]attribute.KeyValue{attribute.Int64(AttrLatencyMS, dur)}, s.usage)
if s.info.Attempt > 0 {
attrs = append(attrs, attribute.Int(AttrAttempt, s.info.Attempt))
}
if s.info.MaxAttempts > 0 {
attrs = append(attrs, attribute.Int(AttrMaxAttempts, s.info.MaxAttempts))
}
if err != nil {
attrs = append(attrs, attribute.String(AttrErrorKind, e.ErrorKind))
s.span.RecordError(err)
s.span.SetStatus(codes.Error, err.Error())
} else {
s.span.SetStatus(codes.Ok, "")
}
s.span.SetAttributes(attrs...)
s.a.recordSpanEvent(s.span, e)
s.span.End()
}
func mergeUsage(current, next ai.Usage) ai.Usage {
if next.InputTokens > current.InputTokens {
current.InputTokens = next.InputTokens
}
if next.OutputTokens > current.OutputTokens {
current.OutputTokens = next.OutputTokens
}
if next.TotalTokens > current.TotalTokens {
current.TotalTokens = next.TotalTokens
}
return current
}
func appendUsage(attrs []attribute.KeyValue, u ai.Usage) []attribute.KeyValue {
if u.InputTokens > 0 {
attrs = append(attrs, attribute.Int(AttrInputTokens, u.InputTokens))
@@ -446,7 +323,6 @@ func runEventAttributes(e RunEvent) []attribute.KeyValue {
attrs := []attribute.KeyValue{
attribute.String(AttrRunID, e.RunID),
attribute.String(AttrAgentName, e.Agent),
attribute.String(AttrRunEventKind, e.Kind),
}
if e.ParentID != "" {
attrs = append(attrs, attribute.String(AttrParentRunID, e.ParentID))
@@ -582,10 +458,6 @@ func ListRunSummariesWithOptions(s store.Store, agentName string, opts RunListOp
if e.SpanID != "" {
summary.SpanID = e.SpanID
}
if e.Kind == "checkpoint" {
summary.Checkpoint = e.Status
summary.Stage = e.Name
}
if e.Error != "" {
summary.LastError = e.Error
}
+3 -95
View File
@@ -5,7 +5,6 @@ import (
"encoding/json"
"errors"
"fmt"
"io"
"strings"
"testing"
"time"
@@ -280,8 +279,7 @@ func spanEventHasRunInfo(events []trace.Event, name, runID, agentName string) bo
continue
}
attrs := spanAttributes(event.Attributes)
wantKind := strings.TrimPrefix(name, "agent.")
if attrs[AttrRunID] == runID && attrs[AttrAgentName] == agentName && attrs[AttrRunEventKind] == wantKind {
if attrs[AttrRunID] == runID && attrs[AttrAgentName] == agentName {
return true
}
}
@@ -500,8 +498,7 @@ func TestListRunSummaries(t *testing.T) {
{Time: time.Unix(0, 1), RunID: "run-a", Agent: "runner", TraceID: "trace-a", SpanID: "span-a", Kind: "run", Name: "first"},
{Time: time.Unix(0, 2), RunID: "run-a", Agent: "runner", Kind: "tool", Name: "probe"},
{Time: time.Unix(0, 3), RunID: "run-b", Agent: "runner", ParentID: "parent", Kind: "run", Name: "second"},
{Time: time.Unix(0, 4), RunID: "run-b", Agent: "runner", ParentID: "parent", Kind: "checkpoint", Name: "ask", Status: "failed"},
{Time: time.Unix(0, 5), RunID: "run-b", Agent: "runner", ParentID: "parent", Kind: "error", Error: "context deadline exceeded", ErrorKind: string(ai.ErrorKindTimeout)},
{Time: time.Unix(0, 4), RunID: "run-b", Agent: "runner", ParentID: "parent", Kind: "error", Error: "context deadline exceeded", ErrorKind: string(ai.ErrorKindTimeout)},
}
for _, e := range events {
b, err := json.Marshal(e)
@@ -524,7 +521,7 @@ func TestListRunSummaries(t *testing.T) {
if got[0].RunID != "run-a" || got[0].TraceID != "trace-a" || got[0].SpanID != "span-a" || got[0].Events != 2 || got[0].Status != "running" || got[0].DurationMS != 0 || got[0].LastKind != "tool" || !got[0].UpdatedAt.Equal(time.Unix(0, 2)) {
t.Fatalf("unexpected run-a summary: %#v", got[0])
}
if got[1].RunID != "run-b" || got[1].ParentID != "parent" || got[1].Events != 3 || got[1].Status != "timeout" || got[1].DurationMS != 0 || got[1].LastKind != "error" || got[1].Checkpoint != "failed" || got[1].Stage != "ask" || got[1].LastError != "context deadline exceeded" || got[1].LastErrorKind != string(ai.ErrorKindTimeout) {
if got[1].RunID != "run-b" || got[1].ParentID != "parent" || got[1].Events != 2 || got[1].Status != "timeout" || got[1].DurationMS != 0 || got[1].LastKind != "error" || got[1].LastError != "context deadline exceeded" || got[1].LastErrorKind != string(ai.ErrorKindTimeout) {
t.Fatalf("unexpected run-b summary: %#v", got[1])
}
}
@@ -580,92 +577,3 @@ func TestListRunSummariesWithOptionsFiltersAndLimits(t *testing.T) {
t.Fatalf("filtered summaries = %#v", got)
}
}
type otelStreamModel struct{ opts ai.Options }
func (m *otelStreamModel) Init(opts ...ai.Option) error {
for _, o := range opts {
o(&m.opts)
}
return nil
}
func (m *otelStreamModel) Options() ai.Options { return m.opts }
func (m *otelStreamModel) String() string { return "otelstream" }
func (m *otelStreamModel) Generate(context.Context, *ai.Request, ...ai.GenerateOption) (*ai.Response, error) {
return &ai.Response{Reply: "unused"}, nil
}
func (m *otelStreamModel) Stream(context.Context, *ai.Request, ...ai.GenerateOption) (ai.Stream, error) {
return &otelTestStream{chunks: []*ai.Response{{Reply: "one", Usage: ai.Usage{InputTokens: 1, OutputTokens: 2, TotalTokens: 3}}, {Reply: "two", Usage: ai.Usage{InputTokens: 1, OutputTokens: 4, TotalTokens: 5}}}}, nil
}
type otelTestStream struct {
chunks []*ai.Response
idx int
}
func (s *otelTestStream) Recv() (*ai.Response, error) {
if s.idx >= len(s.chunks) {
return nil, io.EOF
}
resp := s.chunks[s.idx]
s.idx++
return resp, nil
}
func (s *otelTestStream) Close() error { return nil }
func TestAgentOpenTelemetrySpansModelStream(t *testing.T) {
exp := tracetest.NewInMemoryExporter()
tp := trace.NewTracerProvider(trace.WithSyncer(exp))
st := store.NewMemoryStore()
a := New(Name("stream-runner"), Provider("oteltest"), Model("stream-model"), WithStore(st), TraceProvider(tp))
m := a.(*agentImpl).tracedModel(&otelStreamModel{opts: ai.Options{Model: "stream-model"}})
ctx := ai.WithRunInfo(context.Background(), ai.RunInfo{RunID: "stream-run-1", ParentID: "parent-run", Agent: "stream-runner", Attempt: 2, MaxAttempts: 3, Flow: "deploy", Step: "plan"})
stream, err := m.Stream(ctx, &ai.Request{Prompt: "stream"})
if err != nil {
t.Fatal(err)
}
for {
_, err := stream.Recv()
if errors.Is(err, io.EOF) {
break
}
if err != nil {
t.Fatal(err)
}
}
if err := stream.Close(); err != nil {
t.Fatal(err)
}
spans := exp.GetSpans().Snapshots()
var sawStream bool
for _, s := range spans {
if s.Name() != spanNameModelStream {
continue
}
attrs := spanAttributes(s.Attributes())
if attrs[AttrRunID] != "stream-run-1" || attrs[AttrParentRunID] != "parent-run" || attrs[AttrAgentName] != "stream-runner" {
t.Fatalf("stream span missing run lineage: %#v", attrs)
}
if attrs[AttrFlowName] != "deploy" || attrs[AttrFlowStep] != "plan" {
t.Fatalf("stream span missing workflow attributes: %#v", attrs)
}
if attrs[AttrAttempt] != "2" || attrs[AttrMaxAttempts] != "3" || attrs[AttrTotalTokens] != "5" {
t.Fatalf("stream span missing attempt/usage attributes: %#v", attrs)
}
sawStream = true
}
if !sawStream {
t.Fatalf("stream span not emitted; got %d spans", len(spans))
}
events, err := LoadRunEvents(st, "stream-runner", "stream-run-1")
if err != nil {
t.Fatal(err)
}
if len(events) != 1 || events[0].Kind != "stream" || events[0].TraceID == "" || events[0].SpanID == "" || events[0].Tokens.TotalTokens != 5 {
t.Fatalf("unexpected stream run event: %#v", events)
}
}
-52
View File
@@ -77,30 +77,6 @@ func TestAskRetriesTransientErrorsThenSurfacesStructuredError(t *testing.T) {
if attempts != 2 {
t.Fatalf("model attempts = %d, want 2", attempts)
}
if !strings.Contains(err.Error(), "micro inspect agent <name> --status timeout") ||
!strings.Contains(err.Error(), "docs/guides/debugging-agents.md") {
t.Fatalf("Ask error = %q, want actionable timeout/debugging guidance", err.Error())
}
}
func TestAskRateLimitFailureSuggestsPreflightAndInspect(t *testing.T) {
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
return nil, testStatusError{code: 429}
}
defer func() { fakeGen = nil }()
a := newTestAgent(Name("rate-limit-guidance"), ModelRetry(1, time.Millisecond))
_, err := a.Ask(context.Background(), "hello")
if err == nil {
t.Fatal("Ask succeeded, want rate-limit failure")
}
if !strings.Contains(err.Error(), "micro inspect agent <name> --status rate_limited") ||
!strings.Contains(err.Error(), "micro agent preflight") {
t.Fatalf("Ask error = %q, want inspect and preflight guidance", err.Error())
}
if ai.ClassifyError(err) != ai.ErrorKindRateLimited {
t.Fatalf("ClassifyError(wrapped error) = %q, want rate_limited", ai.ClassifyError(err))
}
}
func TestCanceledAskContextSkipsToolExecution(t *testing.T) {
@@ -156,34 +132,6 @@ func TestToolCallTimeoutPropagatesDeadlineToCustomTool(t *testing.T) {
}
}
func TestAskCancellationDuringToolCallFailsRun(t *testing.T) {
fakeGen = func(ctx context.Context, opts ai.Options, req *ai.Request) (*ai.Response, error) {
if opts.ToolHandler == nil {
t.Fatal("missing tool handler")
}
res := opts.ToolHandler(ctx, ai.ToolCall{ID: "call-1", Name: "cancel-self"})
if !strings.Contains(res.Content, context.Canceled.Error()) {
t.Fatalf("tool result = %q, want cancellation error", res.Content)
}
return &ai.Response{Reply: "should not succeed"}, nil
}
defer func() { fakeGen = nil }()
ctx, cancel := context.WithCancel(context.Background())
a := newTestAgent(
Name("cancel-during-tool"),
WithTool("cancel-self", "cancel the run context", nil, func(context.Context, map[string]any) (string, error) {
cancel()
return "", context.Canceled
}),
)
_, err := a.Ask(ctx, "cancel during tool")
if !errors.Is(err, context.Canceled) {
t.Fatalf("Ask error = %v, want context canceled", err)
}
}
func TestAskCheckpointRecordsTerminalOperationalFailureStatus(t *testing.T) {
tests := []struct {
name string
-39
View File
@@ -185,45 +185,6 @@ type agentStreamAdapter struct {
stream AgentStream
}
type memoryRecordingStream struct {
stream ai.Stream
memory Memory
mu sync.Mutex
chunks []string
closed bool
}
func (s *memoryRecordingStream) Recv() (*ai.Response, error) {
resp, err := s.stream.Recv()
if resp != nil && resp.Reply != "" {
s.mu.Lock()
s.chunks = append(s.chunks, resp.Reply)
s.mu.Unlock()
}
if errors.Is(err, io.EOF) {
s.recordAssistant()
}
return resp, err
}
func (s *memoryRecordingStream) Close() error {
s.recordAssistant()
return s.stream.Close()
}
func (s *memoryRecordingStream) recordAssistant() {
s.mu.Lock()
defer s.mu.Unlock()
if s.closed {
return
}
s.closed = true
if reply := strings.Join(s.chunks, ""); reply != "" {
s.memory.Add("assistant", reply)
}
}
func (s *agentStreamAdapter) Recv() (*ai.Response, error) {
for {
event, err := s.stream.Recv()
-46
View File
@@ -82,52 +82,6 @@ func TestStreamAskHelperRejectsUnsupportedAgent(t *testing.T) {
}
}
func TestAgentStreamUsesProviderStreamingAndRecordsAssistantMemory(t *testing.T) {
var sawRequest bool
fakeStream = func(ctx context.Context, opts ai.Options, req *ai.Request) (ai.Stream, error) {
sawRequest = true
if req.Prompt != "stream the answer" {
t.Fatalf("Prompt = %q, want stream the answer", req.Prompt)
}
if len(req.Messages) != 1 || req.Messages[0].Role != "user" || req.Messages[0].Content != "stream the answer" {
t.Fatalf("Messages = %#v, want current user turn in memory", req.Messages)
}
return &sliceStream{chunks: []string{"hel", "lo"}}, nil
}
defer func() { fakeStream = nil }()
a := newTestAgent(Name("provider-stream"))
stream, err := a.Stream(context.Background(), "stream the answer")
if err != nil {
t.Fatalf("Stream: %v", err)
}
var reply string
for {
chunk, err := stream.Recv()
if errors.Is(err, io.EOF) {
break
}
if err != nil {
t.Fatalf("Recv: %v", err)
}
reply += chunk.Reply
}
if err := stream.Close(); err != nil {
t.Fatalf("Close: %v", err)
}
if !sawRequest {
t.Fatal("provider Stream was not called")
}
if reply != "hello" {
t.Fatalf("reply = %q, want hello", reply)
}
got := a.mem.Messages()
if len(got) != 2 || got[0].Role != "user" || got[0].Content != "stream the answer" || got[1].Role != "assistant" || got[1].Content != "hello" {
t.Fatalf("memory = %#v, want user turn and streamed assistant reply", got)
}
}
func TestResumeStreamAskDoesNotReplayCompletedTool(t *testing.T) {
ctx := context.Background()
cp := flow.StoreCheckpoint(store.NewStore(), "stream-resume-agent")
-14
View File
@@ -300,20 +300,6 @@ Default base URL: `https://api.atlascloud.ai`
Atlas Cloud is an enterprise AI infrastructure platform offering high-performance LLM APIs. It exposes an OpenAI-compatible chat completions endpoint with tool calling support.
### MiniMax
```go
m := ai.New("minimax",
ai.WithAPIKey("your-key"),
ai.WithModel("MiniMax-M3"), // default
)
```
Default model: `MiniMax-M3`
Default base URL: `https://api.minimax.io`
MiniMax offers its flagship MiniMax-M3 model via an OpenAI-compatible chat completions endpoint.
## Auto-Detection
Use `AutoDetectProvider()` to detect the provider from a base URL:
+14 -86
View File
@@ -52,15 +52,6 @@ type Provider struct {
opts ai.Options
}
type atlasToolCall struct {
ID string `json:"id"`
Type string `json:"type"`
Function struct {
Name string `json:"name"`
Arguments string `json:"arguments"`
} `json:"function"`
}
// NewProvider creates a new Atlas Cloud provider.
func NewProvider(opts ...ai.Option) *Provider {
options := ai.NewOptions(opts...)
@@ -130,7 +121,7 @@ func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.Gen
apiReq["tools"] = tools
}
resp, rawMessage, err := p.callAPI(ctx, "chat", apiReq)
resp, rawMessage, err := p.callAPI(ctx, apiReq)
if err != nil {
return nil, err
}
@@ -140,7 +131,6 @@ func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.Gen
}
if p.opts.ToolHandler != nil {
var toolResults []string
followUpMessages := append(messages, map[string]any{
"role": "assistant",
"content": rawMessage["content"],
@@ -149,9 +139,6 @@ func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.Gen
for _, tc := range resp.ToolCalls {
content := p.opts.ToolHandler(ctx, tc).Content
if content != "" {
toolResults = append(toolResults, content)
}
followUpMessages = append(followUpMessages, map[string]any{
"role": "tool",
"tool_call_id": tc.ID,
@@ -164,14 +151,9 @@ func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.Gen
"messages": followUpMessages,
}
followUpResp, _, err := p.callAPI(ctx, "tool-follow-up", followUpReq)
if err != nil {
return nil, err
}
if followUpResp.Reply != "" {
followUpResp, _, err := p.callAPI(ctx, followUpReq)
if err == nil && followUpResp.Reply != "" {
resp.Answer = followUpResp.Reply
} else if len(toolResults) > 0 {
resp.Answer = strings.Join(toolResults, "\n")
}
}
@@ -181,10 +163,6 @@ func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.Gen
// Stream generates a streaming response from Atlas Cloud's OpenAI-compatible
// chat completions endpoint, emitting content deltas as they arrive.
func (p *Provider) Stream(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (ai.Stream, error) {
if len(req.Tools) > 0 {
return nil, fmt.Errorf("%w: atlascloud streaming does not expose tools", ai.ErrStreamingUnsupported)
}
messages := []map[string]any{
{"role": "system", "content": req.SystemPrompt},
}
@@ -289,7 +267,7 @@ func (s *atlasStream) Close() error {
return s.body.Close()
}
func (p *Provider) callAPI(ctx context.Context, phase string, req map[string]any) (*ai.Response, map[string]any, error) {
func (p *Provider) callAPI(ctx context.Context, req map[string]any) (*ai.Response, map[string]any, error) {
reqBody, err := json.Marshal(req)
if err != nil {
return nil, nil, fmt.Errorf("failed to marshal request: %w", err)
@@ -312,14 +290,20 @@ func (p *Provider) callAPI(ctx context.Context, phase string, req map[string]any
respBody, _ := io.ReadAll(httpResp.Body)
if httpResp.StatusCode != http.StatusOK {
return nil, nil, fmt.Errorf("API error (%s) during atlascloud %s request (%s): %s", httpResp.Status, phase, atlascloudRequestSummary(req), string(respBody))
return nil, nil, fmt.Errorf("API error (%s): %s", httpResp.Status, string(respBody))
}
var chatResp struct {
Choices []struct {
Message struct {
Content string `json:"content"`
ToolCalls []atlasToolCall `json:"tool_calls"`
Content string `json:"content"`
ToolCalls []struct {
ID string `json:"id"`
Function struct {
Name string `json:"name"`
Arguments string `json:"arguments"`
} `json:"function"`
} `json:"tool_calls"`
} `json:"message"`
} `json:"choices"`
}
@@ -351,68 +335,12 @@ func (p *Provider) callAPI(ctx context.Context, phase string, req map[string]any
rawMessage := map[string]any{
"content": choice.Message.Content,
"tool_calls": normalizeAtlasCloudToolCalls(choice.Message.ToolCalls),
"tool_calls": choice.Message.ToolCalls,
}
return response, rawMessage, nil
}
func normalizeAtlasCloudToolCalls(toolCalls []atlasToolCall) []map[string]any {
out := make([]map[string]any, 0, len(toolCalls))
for _, tc := range toolCalls {
toolType := tc.Type
if toolType == "" {
toolType = "function"
}
out = append(out, map[string]any{
"id": tc.ID,
"type": toolType,
"function": map[string]any{
"name": tc.Function.Name,
"arguments": tc.Function.Arguments,
},
})
}
return out
}
func atlascloudRequestSummary(req map[string]any) string {
parts := []string{}
if model, ok := req["model"].(string); ok && model != "" {
parts = append(parts, "model="+model)
}
if messages, ok := req["messages"].([]map[string]any); ok {
parts = append(parts, fmt.Sprintf("messages=%d", len(messages)))
if len(messages) > 0 {
last := messages[len(messages)-1]
if role, ok := last["role"].(string); ok && role != "" {
parts = append(parts, "last_role="+role)
}
if _, ok := last["tool_call_id"].(string); ok {
parts = append(parts, "last_has_tool_call_id=true")
}
}
}
if tools, ok := req["tools"].([]map[string]any); ok {
names := make([]string, 0, len(tools))
for _, tool := range tools {
fn, _ := tool["function"].(map[string]any)
name, _ := fn["name"].(string)
if name != "" {
names = append(names, name)
}
}
parts = append(parts, fmt.Sprintf("tools=%d", len(tools)))
if len(names) > 0 {
parts = append(parts, "tool_names="+strings.Join(names, ","))
}
}
if len(parts) == 0 {
return "request_context=unavailable"
}
return strings.Join(parts, " ")
}
const defaultImageModel = "openai/gpt-image-2/text-to-image"
// GenerateImage creates an image using Atlas Cloud's async image API.
-182
View File
@@ -7,7 +7,6 @@ import (
"io"
"net/http"
"net/http/httptest"
"strings"
"testing"
"go-micro.dev/v6/ai"
@@ -141,187 +140,6 @@ func TestProvider_Stream(t *testing.T) {
}
}
func TestProvider_StreamWithToolsFallsBack(t *testing.T) {
p := NewProvider(ai.WithAPIKey("test-key"))
_, err := p.Stream(context.Background(), &ai.Request{
Prompt: "call a tool",
Tools: []ai.Tool{{
Name: "fallback_echo",
Description: "echo fallback marker",
Properties: map[string]any{"value": map[string]any{"type": "string"}},
}},
})
if !errors.Is(err, ai.ErrStreamingUnsupported) {
t.Fatalf("Stream with tools error = %v, want ErrStreamingUnsupported", err)
}
}
func TestProvider_GenerateToolCallEmptyFollowUpUsesToolResult(t *testing.T) {
var calls int
ts := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
if r.URL.Path != "/v1/chat/completions" {
t.Errorf("path = %s, want /v1/chat/completions", r.URL.Path)
}
calls++
w.Header().Set("Content-Type", "application/json")
switch calls {
case 1:
_, _ = w.Write([]byte(`{"choices":[{"message":{"content":"","tool_calls":[{"id":"call-1","function":{"name":"conformance_echo","arguments":"{\"value\":\"agent-conformance\"}"}}]}}]}`))
case 2:
_, _ = w.Write([]byte(`{"choices":[{"message":{"content":""}}]}`))
default:
t.Fatalf("unexpected API call %d", calls)
}
}))
defer ts.Close()
p := NewProvider(
ai.WithAPIKey("test-key"),
ai.WithBaseURL(ts.URL),
ai.WithToolHandler(func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
if call.Name != "conformance_echo" {
t.Fatalf("tool name = %q, want conformance_echo", call.Name)
}
return ai.ToolResult{ID: call.ID, Content: `{"marker":"agent-conformance-ok"}`}
}),
)
resp, err := p.Generate(context.Background(), &ai.Request{
Prompt: "call a tool",
Tools: []ai.Tool{{
Name: "conformance_echo",
Description: "echo conformance marker",
Properties: map[string]any{"value": map[string]any{"type": "string"}},
}},
})
if err != nil {
t.Fatalf("Generate returned error: %v", err)
}
if calls != 2 {
t.Fatalf("API calls = %d, want 2", calls)
}
if resp.Answer != `{"marker":"agent-conformance-ok"}` {
t.Fatalf("Answer = %q, want tool result fallback", resp.Answer)
}
}
func TestProvider_GenerateMinimaxToolRequests(t *testing.T) {
var bodies []map[string]any
ts := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
var body map[string]any
if err := json.NewDecoder(r.Body).Decode(&body); err != nil {
t.Fatalf("decode request: %v", err)
}
bodies = append(bodies, body)
w.Header().Set("Content-Type", "application/json")
switch len(bodies) {
case 1:
_, _ = w.Write([]byte(`{"choices":[{"message":{"content":"","tool_calls":[{"id":"call-1","function":{"name":"conformance_echo","arguments":"{\"value\":\"agent-conformance\"}"}}]}}]}`))
case 2:
_, _ = w.Write([]byte(`{"choices":[{"message":{"content":"done"}}]}`))
default:
t.Fatalf("unexpected API call %d", len(bodies))
}
}))
defer ts.Close()
p := NewProvider(
ai.WithAPIKey("test-key"),
ai.WithBaseURL(ts.URL),
ai.WithModel("minimaxai/minimax-m3"),
ai.WithToolHandler(func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
return ai.ToolResult{ID: call.ID, Content: `{"marker":"agent-conformance-ok"}`}
}),
)
resp, err := p.Generate(context.Background(), &ai.Request{
SystemPrompt: "You are helpful.",
Prompt: "call a tool",
Tools: []ai.Tool{{
Name: "conformance_echo",
Description: "echo conformance marker",
Properties: map[string]any{"value": map[string]any{"type": "string"}},
}},
})
if err != nil {
t.Fatalf("Generate returned error: %v", err)
}
if resp.Answer != "done" {
t.Fatalf("Answer = %q, want done", resp.Answer)
}
if len(bodies) != 2 {
t.Fatalf("captured requests = %d, want 2", len(bodies))
}
if got := bodies[0]["model"]; got != "minimaxai/minimax-m3" {
t.Fatalf("initial model = %v", got)
}
tools, ok := bodies[0]["tools"].([]any)
if !ok || len(tools) != 1 {
t.Fatalf("initial tools = %#v, want one tool", bodies[0]["tools"])
}
tool := tools[0].(map[string]any)
if tool["type"] != "function" {
t.Fatalf("tool type = %v, want function", tool["type"])
}
fn := tool["function"].(map[string]any)
if fn["name"] != "conformance_echo" {
t.Fatalf("tool function name = %v", fn["name"])
}
params := fn["parameters"].(map[string]any)
if params["type"] != "object" {
t.Fatalf("parameters type = %v, want object", params["type"])
}
followUpMessages := bodies[1]["messages"].([]any)
if len(followUpMessages) != 4 {
t.Fatalf("follow-up messages = %d, want 4", len(followUpMessages))
}
assistant := followUpMessages[2].(map[string]any)
if assistant["role"] != "assistant" {
t.Fatalf("assistant role = %v", assistant["role"])
}
assistantCalls := assistant["tool_calls"].([]any)
assistantCall := assistantCalls[0].(map[string]any)
if assistantCall["type"] != "function" {
t.Fatalf("assistant tool call type = %v, want function", assistantCall["type"])
}
toolResult := followUpMessages[3].(map[string]any)
if toolResult["role"] != "tool" || toolResult["tool_call_id"] != "call-1" {
t.Fatalf("tool result message = %#v", toolResult)
}
}
func TestProvider_GenerateToolCallHTTPErrorIncludesRequestContext(t *testing.T) {
ts := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
http.Error(w, `{"code":400,"msg":"bad request"}`, http.StatusBadRequest)
}))
defer ts.Close()
p := NewProvider(
ai.WithAPIKey("test-key"),
ai.WithBaseURL(ts.URL),
ai.WithModel("minimaxai/minimax-m3"),
)
_, err := p.Generate(context.Background(), &ai.Request{
Prompt: "call a tool",
Tools: []ai.Tool{{
Name: "conformance_echo",
Description: "echo conformance marker",
Properties: map[string]any{"value": map[string]any{"type": "string"}},
}},
})
if err == nil {
t.Fatal("Generate error = nil, want 400")
}
msg := err.Error()
for _, want := range []string{"400 Bad Request", "atlascloud chat request", "model=minimaxai/minimax-m3", "tools=1", "tool_names=conformance_echo"} {
if !strings.Contains(msg, want) {
t.Fatalf("error %q missing %q", msg, want)
}
}
if strings.Contains(msg, "test-key") {
t.Fatalf("error leaked API key: %s", msg)
}
}
func TestProvider_Registration(t *testing.T) {
m := ai.New("atlascloud", ai.WithAPIKey("test"))
if m == nil {
+4 -6
View File
@@ -9,7 +9,6 @@ import (
_ "go-micro.dev/v6/ai/atlascloud"
_ "go-micro.dev/v6/ai/gemini"
_ "go-micro.dev/v6/ai/groq"
_ "go-micro.dev/v6/ai/minimax"
_ "go-micro.dev/v6/ai/mistral"
_ "go-micro.dev/v6/ai/openai"
_ "go-micro.dev/v6/ai/together"
@@ -17,7 +16,7 @@ import (
func TestRegisteredProviders(t *testing.T) {
got := ai.RegisteredProviders("")
want := []string{"anthropic", "atlascloud", "gemini", "groq", "minimax", "mistral", "openai", "together"}
want := []string{"anthropic", "atlascloud", "gemini", "groq", "mistral", "openai", "together"}
if !reflect.DeepEqual(got, want) {
t.Fatalf("RegisteredProviders() = %#v, want %#v", got, want)
}
@@ -35,7 +34,7 @@ func TestRegisteredProviders(t *testing.T) {
}
got = ai.RegisteredProviders("stream")
want = []string{"atlascloud", "groq", "minimax", "mistral", "openai", "together"}
want = []string{"atlascloud", "groq", "mistral", "openai", "together"}
if !reflect.DeepEqual(got, want) {
t.Fatalf("RegisteredProviders(stream) = %#v, want %#v", got, want)
}
@@ -48,7 +47,6 @@ func TestCapabilityRows(t *testing.T) {
{Provider: "atlascloud", Capabilities: ai.Capabilities{Model: true, Image: true, Video: true, Stream: true}},
{Provider: "gemini", Capabilities: ai.Capabilities{Model: true}},
{Provider: "groq", Capabilities: ai.Capabilities{Model: true, Stream: true}},
{Provider: "minimax", Capabilities: ai.Capabilities{Model: true, Stream: true}},
{Provider: "mistral", Capabilities: ai.Capabilities{Model: true, Stream: true}},
{Provider: "openai", Capabilities: ai.Capabilities{Model: true, Image: true, Stream: true}},
{Provider: "together", Capabilities: ai.Capabilities{Model: true, Stream: true}},
@@ -61,7 +59,7 @@ func TestCapabilityRows(t *testing.T) {
func TestCapabilityMatrix(t *testing.T) {
matrix := ai.CapabilityMatrix()
for _, provider := range []string{"anthropic", "atlascloud", "gemini", "groq", "minimax", "mistral", "openai", "together"} {
for _, provider := range []string{"anthropic", "atlascloud", "gemini", "groq", "mistral", "openai", "together"} {
caps, ok := matrix[provider]
if !ok {
t.Fatalf("CapabilityMatrix missing %q", provider)
@@ -90,7 +88,7 @@ func TestRegisterStream(t *testing.T) {
}
got := ai.RegisteredProviders("stream")
want := []string{"atlascloud", "groq", "minimax", "mistral", "openai", "test-stream", "together"}
want := []string{"atlascloud", "groq", "mistral", "openai", "test-stream", "together"}
if !reflect.DeepEqual(got, want) {
t.Fatalf("RegisteredProviders(stream) = %#v, want %#v", got, want)
}
-196
View File
@@ -1,196 +0,0 @@
// Package minimax implements the MiniMax model provider.
//
// MiniMax offers its flagship MiniMax-M3 model via an OpenAI-compatible
// chat completions endpoint.
//
// Usage:
//
// import _ "go-micro.dev/v6/ai/minimax"
//
// m := ai.New("minimax",
// ai.WithAPIKey("your-api-key"),
// )
package minimax
import (
"bytes"
"context"
"encoding/json"
"fmt"
"io"
"net/http"
"strings"
"go-micro.dev/v6/ai"
"go-micro.dev/v6/ai/internal/openaiapi"
)
func init() {
ai.Register("minimax", func(opts ...ai.Option) ai.Model {
return NewProvider(opts...)
})
ai.RegisterStream("minimax")
}
type Provider struct {
opts ai.Options
}
func NewProvider(opts ...ai.Option) *Provider {
options := ai.NewOptions(opts...)
if options.Model == "" {
options.Model = "MiniMax-M3"
}
if options.BaseURL == "" {
options.BaseURL = "https://api.minimax.io"
}
return &Provider{opts: options}
}
func (p *Provider) Init(opts ...ai.Option) error {
for _, o := range opts {
o(&p.opts)
}
return nil
}
func (p *Provider) Options() ai.Options { return p.opts }
func (p *Provider) String() string { return "minimax" }
func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (*ai.Response, error) {
var tools []map[string]any
for _, t := range req.Tools {
tools = append(tools, map[string]any{
"type": "function",
"function": map[string]any{
"name": t.Name,
"description": t.Description,
"parameters": map[string]any{
"type": "object",
"properties": t.Properties,
},
},
})
}
messages := []map[string]any{
{"role": "system", "content": req.SystemPrompt},
{"role": "user", "content": req.Prompt},
}
apiReq := map[string]any{
"model": p.opts.Model,
"messages": messages,
}
if len(tools) > 0 {
apiReq["tools"] = tools
}
resp, rawMessage, err := p.callAPI(ctx, apiReq)
if err != nil {
return nil, err
}
if len(resp.ToolCalls) == 0 {
return resp, nil
}
if p.opts.ToolHandler != nil {
followUpMessages := append(messages, map[string]any{
"role": "assistant",
"content": rawMessage["content"],
"tool_calls": rawMessage["tool_calls"],
})
for _, tc := range resp.ToolCalls {
content := p.opts.ToolHandler(ctx, tc).Content
followUpMessages = append(followUpMessages, map[string]any{
"role": "tool",
"tool_call_id": tc.ID,
"content": content,
})
}
followUpResp, _, err := p.callAPI(ctx, map[string]any{
"model": p.opts.Model,
"messages": followUpMessages,
})
if err == nil && followUpResp.Reply != "" {
resp.Answer = followUpResp.Reply
}
}
return resp, nil
}
func (p *Provider) Stream(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (ai.Stream, error) {
return openaiapi.Stream(ctx, p.opts, req, "/v1/chat/completions")
}
func (p *Provider) callAPI(ctx context.Context, req map[string]any) (*ai.Response, map[string]any, error) {
reqBody, err := json.Marshal(req)
if err != nil {
return nil, nil, fmt.Errorf("failed to marshal request: %w", err)
}
apiURL := strings.TrimRight(p.opts.BaseURL, "/") + "/v1/chat/completions"
httpReq, err := http.NewRequestWithContext(ctx, http.MethodPost, apiURL, bytes.NewReader(reqBody))
if err != nil {
return nil, nil, fmt.Errorf("failed to create request: %w", err)
}
httpReq.Header.Set("Content-Type", "application/json")
httpReq.Header.Set("Authorization", "Bearer "+p.opts.APIKey)
httpResp, err := http.DefaultClient.Do(httpReq)
if err != nil {
return nil, nil, fmt.Errorf("API request failed: %w", err)
}
defer httpResp.Body.Close()
respBody, _ := io.ReadAll(httpResp.Body)
if httpResp.StatusCode != http.StatusOK {
return nil, nil, fmt.Errorf("API error (%s): %s", httpResp.Status, string(respBody))
}
var chatResp struct {
Choices []struct {
Message struct {
Content string `json:"content"`
ToolCalls []struct {
ID string `json:"id"`
Function struct {
Name string `json:"name"`
Arguments string `json:"arguments"`
} `json:"function"`
} `json:"tool_calls"`
} `json:"message"`
} `json:"choices"`
}
if err := json.Unmarshal(respBody, &chatResp); err != nil {
return nil, nil, fmt.Errorf("failed to parse response: %w", err)
}
if len(chatResp.Choices) == 0 {
return nil, nil, fmt.Errorf("no response from API")
}
choice := chatResp.Choices[0]
response := &ai.Response{Reply: choice.Message.Content}
for _, tc := range choice.Message.ToolCalls {
var input map[string]any
if err := json.Unmarshal([]byte(tc.Function.Arguments), &input); err != nil {
input = map[string]any{}
}
response.ToolCalls = append(response.ToolCalls, ai.ToolCall{
ID: tc.ID,
Name: tc.Function.Name,
Input: input,
})
}
rawMessage := map[string]any{
"content": choice.Message.Content,
"tool_calls": choice.Message.ToolCalls,
}
return response, rawMessage, nil
}
-96
View File
@@ -1,96 +0,0 @@
package minimax
import (
"context"
"encoding/json"
"errors"
"io"
"net/http"
"net/http/httptest"
"testing"
"go-micro.dev/v6/ai"
)
func TestProvider_String(t *testing.T) {
if NewProvider().String() != "minimax" {
t.Errorf("got %q", NewProvider().String())
}
}
func TestProvider_Defaults(t *testing.T) {
opts := NewProvider().Options()
if opts.Model != "MiniMax-M3" {
t.Errorf("default model = %q", opts.Model)
}
if opts.BaseURL != "https://api.minimax.io" {
t.Errorf("default base URL = %q", opts.BaseURL)
}
}
func TestProvider_Init(t *testing.T) {
p := NewProvider()
if err := p.Init(ai.WithModel("m"), ai.WithAPIKey("k")); err != nil {
t.Fatal(err)
}
if p.Options().Model != "m" || p.Options().APIKey != "k" {
t.Error("Init did not apply options")
}
}
func TestProvider_Generate_NoAPIKey(t *testing.T) {
if _, err := NewProvider().Generate(context.Background(), &ai.Request{Prompt: "hi"}); err == nil {
t.Error("expected error without API key")
}
}
func TestProvider_Stream(t *testing.T) {
var sawStream bool
ts := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
if r.URL.Path != "/v1/chat/completions" {
t.Fatalf("path = %s, want /v1/chat/completions", r.URL.Path)
}
var body map[string]any
if err := json.NewDecoder(r.Body).Decode(&body); err != nil {
t.Fatalf("decode request: %v", err)
}
sawStream, _ = body["stream"].(bool)
w.Header().Set("Content-Type", "text/event-stream")
_, _ = w.Write([]byte("data: {\"choices\":[{\"delta\":{\"content\":\"hel\"}}]}\n\n"))
_, _ = w.Write([]byte("data: {\"choices\":[{\"delta\":{\"content\":\"lo\"}}]}\n\n"))
_, _ = w.Write([]byte("data: [DONE]\n\n"))
}))
defer ts.Close()
p := NewProvider(ai.WithAPIKey("test-key"), ai.WithBaseURL(ts.URL))
stream, err := p.Stream(context.Background(), &ai.Request{Prompt: "Hello"})
if err != nil {
t.Fatalf("Stream returned error: %v", err)
}
defer stream.Close()
if !sawStream {
t.Fatal("stream request did not set stream=true")
}
first, err := stream.Recv()
if err != nil || first.Reply != "hel" {
t.Fatalf("first chunk = %#v, %v; want hel", first, err)
}
second, err := stream.Recv()
if err != nil || second.Reply != "lo" {
t.Fatalf("second chunk = %#v, %v; want lo", second, err)
}
if _, err := stream.Recv(); !errors.Is(err, io.EOF) {
t.Fatalf("final error = %v, want EOF", err)
}
}
func TestProvider_Registration(t *testing.T) {
m := ai.New("minimax", ai.WithAPIKey("test"))
if m == nil {
t.Fatal("provider not registered")
}
if m.String() != "minimax" {
t.Errorf("got %q", m.String())
}
}
-2
View File
@@ -212,8 +212,6 @@ func AutoDetectProvider(baseURL string) string {
return "gemini"
case strings.Contains(baseURL, "groq"):
return "groq"
case strings.Contains(baseURL, "minimax"):
return "minimax"
case strings.Contains(baseURL, "mistral"):
return "mistral"
case strings.Contains(baseURL, "together"):
-729
View File
@@ -1,729 +0,0 @@
// Package ollama implements the Ollama model provider.
//
// Ollama runs open-weight models locally (or via Ollama Cloud). This
// provider supports two API styles:
//
// - Native (/api/chat): local Ollama servers (default, http://localhost:11434)
// - OpenAI-compatible (/v1/chat/completions): Ollama Cloud (https://ollama.com/v1)
//
// The provider auto-detects which style to use based on the base URL.
// Set OLLAMA_BASE_URL to point at your server (local or cloud).
//
// Usage (local):
//
// import _ "go-micro.dev/v6/ai/ollama"
//
// m := ai.New("ollama",
// ai.WithBaseURL("http://localhost:11434"),
// ai.WithModel("llama3.2"),
// )
//
// Usage (Ollama Cloud):
//
// m := ai.New("ollama",
// ai.WithBaseURL("https://ollama.com/v1"),
// ai.WithAPIKey("your-key"),
// ai.WithModel("gpt-oss:120b"),
// )
package ollama
import (
"bufio"
"bytes"
"context"
"encoding/json"
"fmt"
"io"
"net/http"
"strings"
"go-micro.dev/v6/ai"
)
func init() {
ai.Register("ollama", func(opts ...ai.Option) ai.Model {
return NewProvider(opts...)
})
ai.RegisterStream("ollama")
}
// Provider implements the ai.Model interface for Ollama.
type Provider struct {
opts ai.Options
// cloudOverride forces cloud mode for testing. When true, the provider
// uses the OpenAI-compatible endpoint regardless of the base URL.
cloudOverride bool
}
// NewProvider creates a new Ollama provider.
func NewProvider(opts ...ai.Option) *Provider {
options := ai.NewOptions(opts...)
if options.Model == "" {
options.Model = "llama3.2"
}
if options.BaseURL == "" {
options.BaseURL = "http://localhost:11434"
}
return &Provider{opts: options}
}
// Init initializes the provider with options.
func (p *Provider) Init(opts ...ai.Option) error {
for _, o := range opts {
o(&p.opts)
}
return nil
}
// Options returns the provider options.
func (p *Provider) Options() ai.Options { return p.opts }
// String returns the provider name.
func (p *Provider) String() string { return "ollama" }
// isCloud returns true when the base URL points at Ollama Cloud (ollama.com),
// which uses the OpenAI-compatible /v1/chat/completions endpoint instead of
// the native /api/chat.
func (p *Provider) isCloud() bool {
if p.cloudOverride {
return true
}
return strings.Contains(p.opts.BaseURL, "ollama.com")
}
// chatPath returns the API endpoint path for chat completions.
func (p *Provider) chatPath() string {
if p.isCloud() {
return "/v1/chat/completions"
}
return "/api/chat"
}
// streamPath returns the API endpoint path for streaming chat.
// Ollama Cloud uses the same /v1/chat/completions with stream:true.
// Local Ollama uses /api/chat with stream:true.
func (p *Provider) streamPath() string {
return p.chatPath()
}
// Generate generates a response from the Ollama model.
func (p *Provider) Generate(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (*ai.Response, error) {
if p.isCloud() {
return p.generateOpenAI(ctx, req)
}
return p.generateNative(ctx, req)
}
// Stream generates a streaming response.
func (p *Provider) Stream(ctx context.Context, req *ai.Request, opts ...ai.GenerateOption) (ai.Stream, error) {
if p.isCloud() {
return p.streamOpenAI(ctx, req)
}
return p.streamNative(ctx, req)
}
// ---------------------------------------------------------------------------
// OpenAI-compatible mode (Ollama Cloud: ollama.com/v1)
// ---------------------------------------------------------------------------
func (p *Provider) generateOpenAI(ctx context.Context, req *ai.Request) (*ai.Response, error) {
var tools []map[string]any
for _, t := range req.Tools {
tools = append(tools, map[string]any{
"type": "function",
"function": map[string]any{
"name": t.Name,
"description": t.Description,
"parameters": map[string]any{
"type": "object",
"properties": t.Properties,
},
},
})
}
messages := buildOpenAIMessages(req)
apiReq := map[string]any{
"model": p.opts.Model,
"messages": messages,
"stream": false,
}
if len(tools) > 0 {
apiReq["tools"] = tools
}
if p.opts.MaxTokens > 0 {
apiReq["max_tokens"] = p.opts.MaxTokens
}
resp, rawMsg, err := p.callOpenAI(ctx, apiReq)
if err != nil {
return nil, err
}
// No tool calls or no handler — return as-is.
if len(resp.ToolCalls) == 0 || p.opts.ToolHandler == nil {
return resp, nil
}
// Tool execution loop.
convMessages := append(messages, map[string]any{
"role": "assistant",
"content": rawMsg.content,
"tool_calls": rawMsg.toolCalls,
})
pendingCalls := resp.ToolCalls
for round := 0; round < 10; round++ {
for i := range pendingCalls {
result := p.opts.ToolHandler(ctx, pendingCalls[i])
pendingCalls[i].Result = result.Content
convMessages = append(convMessages, map[string]any{
"role": "tool",
"tool_call_id": pendingCalls[i].ID,
"content": result.Content,
})
}
followUpReq := map[string]any{
"model": p.opts.Model,
"messages": convMessages,
"stream": false,
}
if len(tools) > 0 {
followUpReq["tools"] = tools
}
if p.opts.MaxTokens > 0 {
followUpReq["max_tokens"] = p.opts.MaxTokens
}
followUpResp, followUpRaw, err := p.callOpenAI(ctx, followUpReq)
if err != nil {
break
}
if len(followUpResp.ToolCalls) > 0 {
resp.ToolCalls = append(resp.ToolCalls, followUpResp.ToolCalls...)
pendingCalls = followUpResp.ToolCalls
convMessages = append(convMessages, map[string]any{
"role": "assistant",
"content": followUpRaw.content,
"tool_calls": followUpRaw.toolCalls,
})
continue
}
if followUpResp.Reply != "" {
resp.Answer = followUpResp.Reply
}
break
}
return resp, nil
}
func (p *Provider) callOpenAI(ctx context.Context, req map[string]any) (*ai.Response, *rawChatMessage, error) {
reqBody, err := json.Marshal(req)
if err != nil {
return nil, nil, fmt.Errorf("failed to marshal request: %w", err)
}
apiURL := strings.TrimRight(p.opts.BaseURL, "/") + p.chatPath()
httpReq, err := http.NewRequestWithContext(ctx, http.MethodPost, apiURL, bytes.NewReader(reqBody))
if err != nil {
return nil, nil, fmt.Errorf("failed to create request: %w", err)
}
httpReq.Header.Set("Content-Type", "application/json")
if p.opts.APIKey != "" {
httpReq.Header.Set("Authorization", "Bearer "+p.opts.APIKey)
}
httpResp, err := http.DefaultClient.Do(httpReq)
if err != nil {
return nil, nil, fmt.Errorf("API request failed: %w", err)
}
defer httpResp.Body.Close()
respBody, _ := io.ReadAll(httpResp.Body)
if httpResp.StatusCode != http.StatusOK {
return nil, nil, fmt.Errorf("API error (%s): %s", httpResp.Status, string(respBody))
}
var chatResp struct {
Usage struct {
PromptTokens int `json:"prompt_tokens"`
CompletionTokens int `json:"completion_tokens"`
TotalTokens int `json:"total_tokens"`
} `json:"usage"`
Choices []struct {
Message struct {
Role string `json:"role"`
Content string `json:"content"`
ToolCalls []struct {
ID string `json:"id"`
Function struct {
Name string `json:"name"`
Arguments string `json:"arguments"`
} `json:"function"`
} `json:"tool_calls"`
} `json:"message"`
} `json:"choices"`
}
if err := json.Unmarshal(respBody, &chatResp); err != nil {
return nil, nil, fmt.Errorf("failed to parse response: %w", err)
}
if len(chatResp.Choices) == 0 {
return nil, nil, fmt.Errorf("no response from API")
}
choice := chatResp.Choices[0]
response := &ai.Response{
Reply: choice.Message.Content,
Usage: ai.Usage{
InputTokens: chatResp.Usage.PromptTokens,
OutputTokens: chatResp.Usage.CompletionTokens,
TotalTokens: chatResp.Usage.TotalTokens,
},
}
var rawToolCalls []map[string]any
for _, tc := range choice.Message.ToolCalls {
var input map[string]any
if err := json.Unmarshal([]byte(tc.Function.Arguments), &input); err != nil {
input = map[string]any{}
}
response.ToolCalls = append(response.ToolCalls, ai.ToolCall{
ID: tc.ID,
Name: tc.Function.Name,
Input: input,
})
rawToolCalls = append(rawToolCalls, map[string]any{
"id": tc.ID,
"type": "function",
"function": map[string]any{
"name": tc.Function.Name,
"arguments": tc.Function.Arguments,
},
})
}
raw := &rawChatMessage{
content: choice.Message.Content,
toolCalls: rawToolCalls,
}
return response, raw, nil
}
func (p *Provider) streamOpenAI(ctx context.Context, req *ai.Request) (ai.Stream, error) {
messages := buildOpenAIMessages(req)
apiReq := map[string]any{
"model": p.opts.Model,
"messages": messages,
"stream": true,
"stream_options": map[string]any{"include_usage": true},
}
if p.opts.MaxTokens > 0 {
apiReq["max_tokens"] = p.opts.MaxTokens
}
reqBody, err := json.Marshal(apiReq)
if err != nil {
return nil, fmt.Errorf("failed to marshal stream request: %w", err)
}
apiURL := strings.TrimRight(p.opts.BaseURL, "/") + p.streamPath()
httpReq, err := http.NewRequestWithContext(ctx, http.MethodPost, apiURL, bytes.NewReader(reqBody))
if err != nil {
return nil, fmt.Errorf("failed to create stream request: %w", err)
}
httpReq.Header.Set("Content-Type", "application/json")
httpReq.Header.Set("Accept", "text/event-stream")
if p.opts.APIKey != "" {
httpReq.Header.Set("Authorization", "Bearer "+p.opts.APIKey)
}
httpResp, err := http.DefaultClient.Do(httpReq)
if err != nil {
return nil, fmt.Errorf("stream API request failed: %w", err)
}
if httpResp.StatusCode != http.StatusOK {
defer httpResp.Body.Close()
respBody, _ := io.ReadAll(httpResp.Body)
return nil, fmt.Errorf("stream API error (%s): %s", httpResp.Status, string(respBody))
}
return &sseStream{body: httpResp.Body, scanner: bufio.NewScanner(httpResp.Body)}, nil
}
// buildOpenAIMessages converts an ai.Request into the OpenAI chat message format.
func buildOpenAIMessages(req *ai.Request) []map[string]any {
messages := []map[string]any{}
if req.SystemPrompt != "" {
messages = append(messages, map[string]any{"role": "system", "content": req.SystemPrompt})
}
for _, m := range req.Messages {
messages = append(messages, map[string]any{"role": m.Role, "content": m.Content})
}
if req.Prompt != "" {
messages = append(messages, map[string]any{"role": "user", "content": req.Prompt})
}
return messages
}
// sseStream reads OpenAI-style server-sent events (used by Ollama Cloud).
type sseStream struct {
body io.ReadCloser
scanner *bufio.Scanner
closed bool
}
func (s *sseStream) Recv() (*ai.Response, error) {
for s.scanner.Scan() {
line := strings.TrimSpace(s.scanner.Text())
if line == "" || strings.HasPrefix(line, ":") {
continue
}
if !strings.HasPrefix(line, "data:") {
continue
}
data := strings.TrimSpace(strings.TrimPrefix(line, "data:"))
if data == "[DONE]" {
return nil, io.EOF
}
var chunk struct {
Choices []struct {
Delta struct {
Content string `json:"content"`
} `json:"delta"`
} `json:"choices"`
Usage *struct {
PromptTokens int `json:"prompt_tokens"`
CompletionTokens int `json:"completion_tokens"`
TotalTokens int `json:"total_tokens"`
} `json:"usage"`
}
if err := json.Unmarshal([]byte(data), &chunk); err != nil {
return nil, fmt.Errorf("failed to parse stream chunk: %w", err)
}
if len(chunk.Choices) > 0 && chunk.Choices[0].Delta.Content != "" {
return &ai.Response{Reply: chunk.Choices[0].Delta.Content}, nil
}
if chunk.Usage != nil {
return &ai.Response{Usage: ai.Usage{
InputTokens: chunk.Usage.PromptTokens,
OutputTokens: chunk.Usage.CompletionTokens,
TotalTokens: chunk.Usage.TotalTokens,
}}, nil
}
}
if err := s.scanner.Err(); err != nil {
return nil, err
}
return nil, io.EOF
}
func (s *sseStream) Close() error {
if s.closed {
return nil
}
s.closed = true
return s.body.Close()
}
// ---------------------------------------------------------------------------
// Native mode (local Ollama: localhost:11434/api/chat)
// ---------------------------------------------------------------------------
func (p *Provider) generateNative(ctx context.Context, req *ai.Request) (*ai.Response, error) {
var tools []map[string]any
for _, t := range req.Tools {
tools = append(tools, map[string]any{
"type": "function",
"function": map[string]any{
"name": t.Name,
"description": t.Description,
"parameters": map[string]any{
"type": "object",
"properties": t.Properties,
},
},
})
}
messages := []map[string]any{}
if req.SystemPrompt != "" {
messages = append(messages, map[string]any{"role": "system", "content": req.SystemPrompt})
}
for _, m := range req.Messages {
messages = append(messages, map[string]any{"role": m.Role, "content": m.Content})
}
if req.Prompt != "" {
messages = append(messages, map[string]any{"role": "user", "content": req.Prompt})
}
apiReq := map[string]any{
"model": p.opts.Model,
"messages": messages,
"stream": false,
}
if len(tools) > 0 {
apiReq["tools"] = tools
}
if p.opts.MaxTokens > 0 {
apiReq["options"] = map[string]any{"num_predict": p.opts.MaxTokens}
}
resp, rawMsg, err := p.callNative(ctx, apiReq)
if err != nil {
return nil, err
}
if len(resp.ToolCalls) == 0 || p.opts.ToolHandler == nil {
return resp, nil
}
convMessages := append(messages, map[string]any{
"role": "assistant",
"content": rawMsg.content,
})
if len(rawMsg.toolCalls) > 0 {
convMessages[len(convMessages)-1]["tool_calls"] = rawMsg.toolCalls
}
pendingCalls := resp.ToolCalls
for round := 0; round < 10; round++ {
for i := range pendingCalls {
result := p.opts.ToolHandler(ctx, pendingCalls[i])
pendingCalls[i].Result = result.Content
convMessages = append(convMessages, map[string]any{
"role": "tool",
"content": result.Content,
})
}
followUpReq := map[string]any{
"model": p.opts.Model,
"messages": convMessages,
"stream": false,
}
if len(tools) > 0 {
followUpReq["tools"] = tools
}
if p.opts.MaxTokens > 0 {
followUpReq["options"] = map[string]any{"num_predict": p.opts.MaxTokens}
}
followUpResp, followUpRaw, err := p.callNative(ctx, followUpReq)
if err != nil {
break
}
if len(followUpResp.ToolCalls) > 0 {
resp.ToolCalls = append(resp.ToolCalls, followUpResp.ToolCalls...)
pendingCalls = followUpResp.ToolCalls
convMessages = append(convMessages, map[string]any{
"role": "assistant",
"content": followUpRaw.content,
})
if len(followUpRaw.toolCalls) > 0 {
convMessages[len(convMessages)-1]["tool_calls"] = followUpRaw.toolCalls
}
continue
}
if followUpResp.Reply != "" {
resp.Answer = followUpResp.Reply
}
break
}
return resp, nil
}
func (p *Provider) callNative(ctx context.Context, req map[string]any) (*ai.Response, *rawChatMessage, error) {
reqBody, err := json.Marshal(req)
if err != nil {
return nil, nil, fmt.Errorf("failed to marshal request: %w", err)
}
apiURL := strings.TrimRight(p.opts.BaseURL, "/") + p.chatPath()
httpReq, err := http.NewRequestWithContext(ctx, http.MethodPost, apiURL, bytes.NewReader(reqBody))
if err != nil {
return nil, nil, fmt.Errorf("failed to create request: %w", err)
}
httpReq.Header.Set("Content-Type", "application/json")
if p.opts.APIKey != "" {
httpReq.Header.Set("Authorization", "Bearer "+p.opts.APIKey)
}
httpResp, err := http.DefaultClient.Do(httpReq)
if err != nil {
return nil, nil, fmt.Errorf("API request failed: %w", err)
}
defer httpResp.Body.Close()
respBody, _ := io.ReadAll(httpResp.Body)
if httpResp.StatusCode != http.StatusOK {
return nil, nil, fmt.Errorf("API error (%s): %s", httpResp.Status, string(respBody))
}
var chatResp struct {
Message struct {
Role string `json:"role"`
Content string `json:"content"`
ToolCalls []struct {
Function struct {
Name string `json:"name"`
Arguments any `json:"arguments"`
} `json:"function"`
} `json:"tool_calls"`
} `json:"message"`
Done bool `json:"done"`
PromptEvalCount int `json:"prompt_eval_count"`
EvalCount int `json:"eval_count"`
}
if err := json.Unmarshal(respBody, &chatResp); err != nil {
return nil, nil, fmt.Errorf("failed to parse response: %w", err)
}
response := &ai.Response{
Reply: chatResp.Message.Content,
Usage: ai.Usage{
InputTokens: chatResp.PromptEvalCount,
OutputTokens: chatResp.EvalCount,
TotalTokens: chatResp.PromptEvalCount + chatResp.EvalCount,
},
}
var rawToolCalls []map[string]any
for _, tc := range chatResp.Message.ToolCalls {
var input map[string]any
switch v := tc.Function.Arguments.(type) {
case string:
if err := json.Unmarshal([]byte(v), &input); err != nil {
input = map[string]any{}
}
case map[string]any:
input = v
default:
input = map[string]any{}
}
response.ToolCalls = append(response.ToolCalls, ai.ToolCall{
Name: tc.Function.Name,
Input: input,
})
rawToolCalls = append(rawToolCalls, map[string]any{
"function": map[string]any{
"name": tc.Function.Name,
"arguments": tc.Function.Arguments,
},
})
}
raw := &rawChatMessage{
content: chatResp.Message.Content,
toolCalls: rawToolCalls,
}
return response, raw, nil
}
func (p *Provider) streamNative(ctx context.Context, req *ai.Request) (ai.Stream, error) {
messages := []map[string]any{}
if req.SystemPrompt != "" {
messages = append(messages, map[string]any{"role": "system", "content": req.SystemPrompt})
}
for _, m := range req.Messages {
messages = append(messages, map[string]any{"role": m.Role, "content": m.Content})
}
if req.Prompt != "" {
messages = append(messages, map[string]any{"role": "user", "content": req.Prompt})
}
apiReq := map[string]any{
"model": p.opts.Model,
"messages": messages,
"stream": true,
}
if p.opts.MaxTokens > 0 {
apiReq["options"] = map[string]any{"num_predict": p.opts.MaxTokens}
}
reqBody, err := json.Marshal(apiReq)
if err != nil {
return nil, fmt.Errorf("failed to marshal stream request: %w", err)
}
apiURL := strings.TrimRight(p.opts.BaseURL, "/") + p.streamPath()
httpReq, err := http.NewRequestWithContext(ctx, http.MethodPost, apiURL, bytes.NewReader(reqBody))
if err != nil {
return nil, fmt.Errorf("failed to create stream request: %w", err)
}
httpReq.Header.Set("Content-Type", "application/json")
if p.opts.APIKey != "" {
httpReq.Header.Set("Authorization", "Bearer "+p.opts.APIKey)
}
httpResp, err := http.DefaultClient.Do(httpReq)
if err != nil {
return nil, fmt.Errorf("stream API request failed: %w", err)
}
if httpResp.StatusCode != http.StatusOK {
defer httpResp.Body.Close()
respBody, _ := io.ReadAll(httpResp.Body)
return nil, fmt.Errorf("stream API error (%s): %s", httpResp.Status, string(respBody))
}
return &ndjsonStream{body: httpResp.Body, scanner: bufio.NewScanner(httpResp.Body)}, nil
}
// ndjsonStream reads newline-delimited JSON (used by local Ollama).
type ndjsonStream struct {
body io.ReadCloser
scanner *bufio.Scanner
closed bool
}
func (s *ndjsonStream) Recv() (*ai.Response, error) {
for s.scanner.Scan() {
line := strings.TrimSpace(s.scanner.Text())
if line == "" {
continue
}
var chunk struct {
Message struct {
Content string `json:"content"`
} `json:"message"`
Done bool `json:"done"`
}
if err := json.Unmarshal([]byte(line), &chunk); err != nil {
return nil, fmt.Errorf("failed to parse stream chunk: %w", err)
}
if chunk.Done {
return nil, io.EOF
}
if chunk.Message.Content != "" {
return &ai.Response{Reply: chunk.Message.Content}, nil
}
}
if err := s.scanner.Err(); err != nil {
return nil, err
}
return nil, io.EOF
}
func (s *ndjsonStream) Close() error {
if s.closed {
return nil
}
s.closed = true
return s.body.Close()
}
// rawChatMessage holds the raw assistant content and tool calls for
// follow-up messages.
type rawChatMessage struct {
content string
toolCalls []map[string]any
}
-333
View File
@@ -1,333 +0,0 @@
package ollama
import (
"context"
"net/http"
"net/http/httptest"
"strings"
"testing"
"go-micro.dev/v6/ai"
)
// ---------------------------------------------------------------------------
// Provider basics
// ---------------------------------------------------------------------------
func TestProvider_String(t *testing.T) {
p := NewProvider()
if p.String() != "ollama" {
t.Errorf("Expected 'ollama', got '%s'", p.String())
}
}
func TestProvider_Init(t *testing.T) {
p := NewProvider()
err := p.Init(
ai.WithModel("test-model"),
ai.WithAPIKey("test-key"),
ai.WithBaseURL("https://test.com"),
)
if err != nil {
t.Fatalf("Init failed: %v", err)
}
opts := p.Options()
if opts.Model != "test-model" {
t.Errorf("Expected model 'test-model', got '%s'", opts.Model)
}
if opts.APIKey != "test-key" {
t.Errorf("Expected API key 'test-key', got '%s'", opts.APIKey)
}
if opts.BaseURL != "https://test.com" {
t.Errorf("Expected base URL 'https://test.com', got '%s'", opts.BaseURL)
}
}
func TestProvider_Defaults(t *testing.T) {
p := NewProvider()
opts := p.Options()
if opts.Model != "llama3.2" {
t.Errorf("Expected default model 'llama3.2', got '%s'", opts.Model)
}
if opts.BaseURL != "http://localhost:11434" {
t.Errorf("Expected default base URL 'http://localhost:11434', got '%s'", opts.BaseURL)
}
}
func TestProvider_IsCloud(t *testing.T) {
local := NewProvider(ai.WithBaseURL("http://localhost:11434"))
if local.isCloud() {
t.Error("localhost should not be cloud")
}
cloud := NewProvider(ai.WithBaseURL("https://ollama.com/v1"))
if !cloud.isCloud() {
t.Error("ollama.com should be cloud")
}
}
// ---------------------------------------------------------------------------
// Native mode (local Ollama: /api/chat)
// ---------------------------------------------------------------------------
func TestNative_Generate(t *testing.T) {
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
if r.URL.Path != "/api/chat" {
t.Errorf("Expected /api/chat, got %s", r.URL.Path)
}
w.Header().Set("Content-Type", "application/json")
w.Write([]byte(`{
"model": "llama3.2",
"message": {"role": "assistant", "content": "Hello from local Ollama!"},
"done": true,
"prompt_eval_count": 10,
"eval_count": 5
}`))
}))
defer srv.Close()
p := NewProvider(ai.WithBaseURL(srv.URL), ai.WithModel("llama3.2"))
resp, err := p.Generate(context.Background(), &ai.Request{
Prompt: "Hi",
SystemPrompt: "You are helpful",
})
if err != nil {
t.Fatalf("Generate failed: %v", err)
}
if resp.Reply != "Hello from local Ollama!" {
t.Errorf("Expected 'Hello from local Ollama!', got '%s'", resp.Reply)
}
if resp.Usage.TotalTokens != 15 {
t.Errorf("Expected total tokens 15, got %d", resp.Usage.TotalTokens)
}
}
func TestNative_GenerateWithToolCall(t *testing.T) {
callCount := 0
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
callCount++
w.Header().Set("Content-Type", "application/json")
if callCount == 1 {
w.Write([]byte(`{
"model": "llama3.2",
"message": {
"role": "assistant",
"content": "",
"tool_calls": [{"function": {"name": "get_weather", "arguments": "{\"city\":\"Seoul\"}"}}]
},
"done": true
}`))
} else {
w.Write([]byte(`{
"model": "llama3.2",
"message": {"role": "assistant", "content": "The weather in Seoul is sunny."},
"done": true
}`))
}
}))
defer srv.Close()
handler := func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
if call.Name != "get_weather" {
t.Errorf("Expected tool 'get_weather', got '%s'", call.Name)
}
return ai.ToolResult{ID: call.ID, Content: `{"temp": 22, "condition": "sunny"}`}
}
p := NewProvider(
ai.WithBaseURL(srv.URL),
ai.WithModel("llama3.2"),
ai.WithToolHandler(handler),
)
resp, err := p.Generate(context.Background(), &ai.Request{
Prompt: "What's the weather?",
Tools: []ai.Tool{{
Name: "get_weather",
Description: "Get weather",
Properties: map[string]any{"city": map[string]any{"type": "string"}},
}},
})
if err != nil {
t.Fatalf("Generate failed: %v", err)
}
if len(resp.ToolCalls) == 0 {
t.Error("Expected tool calls")
}
if resp.Answer != "The weather in Seoul is sunny." {
t.Errorf("Expected final answer, got '%s'", resp.Answer)
}
}
func TestNative_Stream(t *testing.T) {
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
w.Header().Set("Content-Type", "application/json")
w.Write([]byte(`{"message":{"role":"assistant","content":"Hello"},"done":false}` + "\n"))
w.Write([]byte(`{"message":{"role":"assistant","content":" world"},"done":false}` + "\n"))
w.Write([]byte(`{"message":{"role":"assistant","content":""},"done":true}` + "\n"))
}))
defer srv.Close()
p := NewProvider(ai.WithBaseURL(srv.URL), ai.WithModel("llama3.2"))
stream, err := p.Stream(context.Background(), &ai.Request{Prompt: "Hi"})
if err != nil {
t.Fatalf("Stream failed: %v", err)
}
defer stream.Close()
var chunks []string
for {
resp, err := stream.Recv()
if err != nil {
break
}
if resp.Reply != "" {
chunks = append(chunks, resp.Reply)
}
}
result := strings.Join(chunks, "")
if result != "Hello world" {
t.Errorf("Expected 'Hello world', got '%s'", result)
}
}
// ---------------------------------------------------------------------------
// Cloud mode (Ollama Cloud: /v1/chat/completions)
// ---------------------------------------------------------------------------
func TestCloud_Generate(t *testing.T) {
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
if r.URL.Path != "/v1/chat/completions" {
t.Errorf("Expected /v1/chat/completions, got %s", r.URL.Path)
}
w.Header().Set("Content-Type", "application/json")
w.Write([]byte(`{
"usage": {"prompt_tokens": 10, "completion_tokens": 5, "total_tokens": 15},
"choices": [{"message": {"role": "assistant", "content": "Hello from Ollama Cloud!"}}]
}`))
}))
defer srv.Close()
p := NewProvider(ai.WithBaseURL(srv.URL), ai.WithModel("gemma4:31b-cloud"), ai.WithAPIKey("test-key"))
p.cloudOverride = true
resp, err := p.Generate(context.Background(), &ai.Request{
Prompt: "Hi",
SystemPrompt: "You are helpful",
})
if err != nil {
t.Fatalf("Generate failed: %v", err)
}
if resp.Reply != "Hello from Ollama Cloud!" {
t.Errorf("Expected 'Hello from Ollama Cloud!', got '%s'", resp.Reply)
}
if resp.Usage.TotalTokens != 15 {
t.Errorf("Expected total tokens 15, got %d", resp.Usage.TotalTokens)
}
}
func TestCloud_GenerateWithToolCall(t *testing.T) {
callCount := 0
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
callCount++
w.Header().Set("Content-Type", "application/json")
if callCount == 1 {
w.Write([]byte(`{
"choices": [{"message": {
"role": "assistant",
"content": "",
"tool_calls": [{"id": "call_1", "function": {"name": "search", "arguments": "{\"query\":\"go interfaces\"}"}}]
}}]
}`))
} else {
w.Write([]byte(`{
"choices": [{"message": {"role": "assistant", "content": "Go interfaces are implicit."}}]
}`))
}
}))
defer srv.Close()
handler := func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
return ai.ToolResult{ID: call.ID, Content: `{"results": ["Go interfaces are implicit"]}`}
}
p := NewProvider(
ai.WithBaseURL(srv.URL),
ai.WithModel("gemma4:31b-cloud"),
ai.WithAPIKey("test-key"),
ai.WithToolHandler(handler),
)
p.cloudOverride = true
resp, err := p.Generate(context.Background(), &ai.Request{
Prompt: "Search for Go interfaces",
Tools: []ai.Tool{{
Name: "search",
Description: "Search the knowledge base",
Properties: map[string]any{"query": map[string]any{"type": "string"}},
}},
})
if err != nil {
t.Fatalf("Generate failed: %v", err)
}
if len(resp.ToolCalls) == 0 {
t.Error("Expected tool calls")
}
if resp.Answer != "Go interfaces are implicit." {
t.Errorf("Expected final answer, got '%s'", resp.Answer)
}
}
func TestCloud_Stream(t *testing.T) {
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
w.Header().Set("Content-Type", "text/event-stream")
w.Write([]byte("data: {\"choices\":[{\"delta\":{\"content\":\"Hello\"}}]}\n\n"))
w.Write([]byte("data: {\"choices\":[{\"delta\":{\"content\":\" cloud\"}}]}\n\n"))
w.Write([]byte("data: [DONE]\n\n"))
}))
defer srv.Close()
p := NewProvider(
ai.WithBaseURL(srv.URL),
ai.WithModel("gemma4:31b-cloud"),
ai.WithAPIKey("test-key"),
)
p.cloudOverride = true
stream, err := p.Stream(context.Background(), &ai.Request{Prompt: "Hi"})
if err != nil {
t.Fatalf("Stream failed: %v", err)
}
defer stream.Close()
var chunks []string
for {
resp, err := stream.Recv()
if err != nil {
break
}
if resp.Reply != "" {
chunks = append(chunks, resp.Reply)
}
}
result := strings.Join(chunks, "")
if result != "Hello cloud" {
t.Errorf("Expected 'Hello cloud', got '%s'", result)
}
}
// ---------------------------------------------------------------------------
// Error handling
// ---------------------------------------------------------------------------
func TestProvider_APIError(t *testing.T) {
srv := httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
w.WriteHeader(http.StatusInternalServerError)
w.Write([]byte(`{"error": "model not found"}`))
}))
defer srv.Close()
p := NewProvider(ai.WithBaseURL(srv.URL), ai.WithModel("nonexistent"))
_, err := p.Generate(context.Background(), &ai.Request{Prompt: "Hi"})
if err == nil {
t.Error("Expected error on API failure")
}
if !strings.Contains(err.Error(), "API error") {
t.Errorf("Expected 'API error' in message, got '%s'", err.Error())
}
}
+4 -8
View File
@@ -99,19 +99,15 @@ func GenerateWithRetry(ctx context.Context, m Model, req *Request, policy Genera
}
resp, err := m.Generate(callCtx, req, opts...)
cancel()
// Caller cancellation/deadline always wins and is not retried, even if
// a provider or tool loop swallowed the canceled tool result and returned
// a final response. This keeps agent runs from appearing successful after
// their controlling context was abandoned.
if ctxErr := ctx.Err(); ctxErr != nil {
return nil, ctxErr
}
if err == nil {
return resp, nil
}
last = err
// Caller cancellation/deadline always wins and is not retried.
if ctx.Err() != nil {
return nil, ctx.Err()
}
transient := IsTransientError(err)
if attempt == policy.MaxAttempts || !transient {
if attempt > 1 || transient {
+1 -3
View File
@@ -18,7 +18,6 @@ import (
_ "go-micro.dev/v6/ai/atlascloud"
_ "go-micro.dev/v6/ai/gemini"
_ "go-micro.dev/v6/ai/groq"
_ "go-micro.dev/v6/ai/minimax"
_ "go-micro.dev/v6/ai/mistral"
_ "go-micro.dev/v6/ai/openai"
_ "go-micro.dev/v6/ai/together"
@@ -279,7 +278,6 @@ func conformingStreamProviders(t *testing.T) []string {
allowed := map[string]struct{}{
"atlascloud": {},
"groq": {},
"minimax": {},
"mistral": {},
"openai": {},
"together": {},
@@ -290,7 +288,7 @@ func conformingStreamProviders(t *testing.T) []string {
out = append(out, provider)
}
}
want := []string{"atlascloud", "groq", "minimax", "mistral", "openai", "together"}
want := []string{"atlascloud", "groq", "mistral", "openai", "together"}
if !reflect.DeepEqual(out, want) {
t.Fatalf("conforming stream providers = %#v, want %#v (registered stream providers: %#v)", out, want, providers)
}
-52
View File
@@ -625,55 +625,3 @@ Scopes provide fine-grained access control over which tokens can call which serv
The gateway's scope system uses `auth.Account` from the go-micro framework. Scopes on accounts are the same `[]string` field used by the framework's `auth.Rules` and `wrapper/auth` package. The gateway stores scope requirements in the default store under `endpoint-scopes/<service>.<endpoint>` keys and checks them on every HTTP request.
For service-level (RPC) auth within the go-micro mesh, use the `wrapper/auth` package which provides `auth.Rules` with priority-based access control. See the [auth wrapper documentation](../../wrapper/auth/README.md) for details.
## Self-improving loop (`micro loop`)
Turn a repository into a self-improving one: GitHub Actions workflows that
dispatch a coding agent to plan, build, and triage — gated by CI. This is the
same loop that maintains go-micro itself, generalized so any repo (and any
@mention-driven agent) can use it.
```bash
micro loop init # scaffold the loop into the current repo
micro loop verify # check a repo is wired correctly
```
`micro loop init` writes the selected roles' workflows, their prompts, and a queue. Choose roles with `--roles` (default `planner,builder,triage`; `--roles all` for everything):
| Role | Workflow | What it does |
|------|----------|--------------|
| Planner | `loop-planner.yml` | Keeps a ranked queue in `.github/loop/PRIORITIES.md` |
| Builder | `loop-builder.yml` | Builds the top open item as a single-concern PR, auto-merged on green CI |
| Triage | `loop-triage.yml` | Turns CI failures into scoped fix issues, back into the queue |
| Coherence | `loop-coherence.yml` | Keeps README/docs/CHANGELOG aligned with the North Star *(opt-in)* |
| Security | `loop-security.yml` | Audits for vulnerabilities and files them; never auto-merges fixes, never publishes exploit detail *(opt-in)* |
| Release | `loop-release.yml` | Cuts the next patch tag when the branch has new commits *(opt-in)* |
The workflows are the **mechanism**; each dispatch role's instruction is an editable file in `.github/loop/prompts/` — the **policy**. Edit those prompts (and `.github/loop/NORTH_STAR.md`) to steer the loop without touching the CLI. That split is what lets go-micro itself use `micro loop` while keeping its own richer prompts.
Common flags:
```bash
micro loop init \
--roles all \
--agent @codex \
--token-secret LOOP_TOKEN \
--branch main \
--ci-workflow CI
```
- `--roles`: which roles to scaffold (`planner,builder,triage`, or `all`)
- `--agent`: how the workflows summon the agent (an `@mention`)
- `--token-secret`: repo secret holding the driving user PAT
- `--branch`: base branch for the loop's PRs
- `--ci-workflow`: `name:` of the CI workflow triage watches
- `--tag-prefix`: tag prefix the release role matches and bumps (default `v`)
Two things the CLI can't do for you (and `micro loop verify` reminds you of):
1. **Add the token secret.** The agent ignores `@mentions` from the
`github-actions` bot, so dispatch posts as a real user via a PAT stored in
the `--token-secret` repo secret. The workflows no-op until it's set.
2. **Set branch protection.** Require the CI checks with **0 approving reviews**
so the builder's native auto-merge lands PRs the moment CI is green — that
green-CI gate is the loop's only safety mechanism, so keep the suite strong.
-8
View File
@@ -36,14 +36,6 @@ func init() {
Name: "agent",
Usage: "Manage AI agents",
Subcommands: []*cli.Command{
{
Name: "preflight",
Aliases: []string{"doctor"},
Usage: "Check local prerequisites before the first provider-backed agent",
Action: func(c *cli.Context) error {
return runAgentPreflight(os.Stdout, defaultPreflightDeps())
},
},
{
Name: "list",
Usage: "List registered agents",
-163
View File
@@ -1,163 +0,0 @@
package agent
import (
"fmt"
"io"
"net"
"os"
"os/exec"
"strings"
"go-micro.dev/v6/cmd"
)
type preflightCheck struct {
Name string
OK bool
Detail string
Fix string
Next string
}
type preflightDeps struct {
lookPath func(string) (string, error)
commandOutput func(string, ...string) ([]byte, error)
executable func() (string, error)
version func() string
getenv func(string) string
listen func(string, string) (net.Listener, error)
}
func defaultPreflightDeps() preflightDeps {
return preflightDeps{
lookPath: exec.LookPath,
commandOutput: func(name string, args ...string) ([]byte, error) { return exec.Command(name, args...).CombinedOutput() },
executable: os.Executable,
version: func() string { return cmd.App().Version },
getenv: os.Getenv,
listen: net.Listen,
}
}
func runAgentPreflight(w io.Writer, deps preflightDeps) error {
checks := agentPreflightChecks(deps)
failures := 0
fmt.Fprintln(w, "First-agent preflight")
for _, check := range checks {
mark := "✓"
if !check.OK {
mark = "✗"
failures++
}
fmt.Fprintf(w, " %s %s — %s\n", mark, check.Name, check.Detail)
if !check.OK && check.Fix != "" {
fmt.Fprintf(w, " Fix: %s\n", check.Fix)
}
if !check.OK && check.Next != "" {
fmt.Fprintf(w, " Next: %s\n", check.Next)
}
}
if failures > 0 {
return fmt.Errorf("first-agent preflight failed: %d check(s) need attention", failures)
}
fmt.Fprintln(w, "\nReady for the first-agent walkthrough: micro run, then open http://localhost:8080/agent or use micro chat.")
return nil
}
func agentPreflightChecks(deps preflightDeps) []preflightCheck {
if deps.lookPath == nil {
deps.lookPath = exec.LookPath
}
if deps.commandOutput == nil {
deps.commandOutput = func(name string, args ...string) ([]byte, error) { return exec.Command(name, args...).CombinedOutput() }
}
if deps.executable == nil {
deps.executable = os.Executable
}
if deps.version == nil {
deps.version = func() string { return cmd.App().Version }
}
if deps.getenv == nil {
deps.getenv = os.Getenv
}
if deps.listen == nil {
deps.listen = net.Listen
}
checks := []preflightCheck{checkGoToolchain(deps), checkMicroBinary(deps), checkProviderKey(deps), checkPortAvailable(deps, ":8080", "micro run gateway and /agent playground")}
return checks
}
func checkGoToolchain(deps preflightDeps) preflightCheck {
path, err := deps.lookPath("go")
if err != nil {
return preflightCheck{Name: "Go toolchain", Detail: "go was not found on PATH", Fix: "Install Go 1.24 or newer from https://go.dev/doc/install and ensure go is on PATH.", Next: "After installing Go, rerun micro agent preflight, then continue with docs/guides/your-first-agent.html."}
}
out, err := deps.commandOutput("go", "version")
if err != nil {
return preflightCheck{Name: "Go toolchain", Detail: strings.TrimSpace(string(out)), Fix: "Ensure the go command runs successfully (try `go version`) before starting the agent walkthrough.", Next: "Use docs/guides/debugging-agents.html after the toolchain check passes if an agent run still fails."}
}
version := firstLine(out)
if !goVersionAtLeast(version, 1, 24) {
return preflightCheck{Name: "Go toolchain", Detail: fmt.Sprintf("%s (%s)", version, path), Fix: "Upgrade to Go 1.24 or newer before running generated services.", Next: "Rerun micro agent preflight, then continue with docs/guides/your-first-agent.html."}
}
return preflightCheck{Name: "Go toolchain", OK: true, Detail: fmt.Sprintf("%s (%s)", version, path)}
}
func checkMicroBinary(deps preflightDeps) preflightCheck {
exe, err := deps.executable()
if err != nil || exe == "" {
return preflightCheck{Name: "micro binary", Detail: "micro executable path is unavailable", Fix: "Install the micro CLI or run this check through `go run ./cmd/micro agent preflight` from the repository.", Next: "Then follow docs/getting-started.html for the scaffold -> run path."}
}
version := deps.version()
if version == "" {
version = "version unavailable"
}
return preflightCheck{Name: "micro binary", OK: true, Detail: fmt.Sprintf("%s (%s)", version, exe)}
}
func checkProviderKey(deps preflightDeps) preflightCheck {
keys := []string{"MICRO_AI_API_KEY", "ANTHROPIC_API_KEY", "OPENAI_API_KEY", "GEMINI_API_KEY", "GROQ_API_KEY", "MISTRAL_API_KEY", "TOGETHER_API_KEY", "ATLASCLOUD_API_KEY"}
var found []string
for _, k := range keys {
if deps.getenv(k) != "" {
found = append(found, k)
}
}
if len(found) == 0 {
return preflightCheck{Name: "provider API key", Detail: "no supported provider key found", Fix: "Export MICRO_AI_API_KEY or a provider key such as ANTHROPIC_API_KEY before running provider-backed agents.", Next: "For a no-secret path, run the mock-model walkthrough in docs/guides/no-secret-first-agent.html; for real providers, see docs/guides/debugging-agents.html#provider-failures."}
}
return preflightCheck{Name: "provider API key", OK: true, Detail: "found " + strings.Join(found, ", ")}
}
func checkPortAvailable(deps preflightDeps, addr, use string) preflightCheck {
ln, err := deps.listen("tcp", addr)
if err != nil {
return preflightCheck{Name: "local port " + addr, Detail: "busy or unavailable for " + use, Fix: "Stop the process using " + addr + " (for example, `lsof -i :8080`) or run `micro run --address` with a free port.", Next: "Once the gateway starts, open http://localhost:8080/agent or continue with docs/guides/your-first-agent.html#chat-with-your-agent."}
}
_ = ln.Close()
return preflightCheck{Name: "local port " + addr, OK: true, Detail: "available for " + use}
}
func firstLine(b []byte) string {
s := strings.TrimSpace(string(b))
if i := strings.IndexByte(s, '\n'); i >= 0 {
return s[:i]
}
return s
}
func goVersionAtLeast(line string, wantMajor, wantMinor int) bool {
idx := strings.Index(line, "go1.")
if idx < 0 {
return false
}
var major, minor int
if _, err := fmt.Sscanf(line[idx:], "go%d.%d", &major, &minor); err != nil {
return false
}
if major != wantMajor {
return major > wantMajor
}
return minor >= wantMinor
}
-124
View File
@@ -1,124 +0,0 @@
package agent
import (
"bytes"
"errors"
"net"
"strings"
"testing"
)
type stubListener struct{}
func (stubListener) Accept() (net.Conn, error) { return nil, errors.New("closed") }
func (stubListener) Close() error { return nil }
func (stubListener) Addr() net.Addr { return stubAddr(":8080") }
type stubAddr string
func (a stubAddr) Network() string { return "tcp" }
func (a stubAddr) String() string { return string(a) }
func TestRunAgentPreflightPassesWithKeyAndFreePort(t *testing.T) {
deps := preflightDeps{
lookPath: func(name string) (string, error) { return "/usr/bin/" + name, nil },
commandOutput: func(name string, args ...string) ([]byte, error) {
return []byte("go version go1.24.0 linux/amd64\n"), nil
},
executable: func() (string, error) { return "/usr/local/bin/micro", nil },
getenv: func(key string) string {
if key == "ANTHROPIC_API_KEY" {
return "set"
}
return ""
},
listen: func(network, address string) (net.Listener, error) { return stubListener{}, nil },
}
var out bytes.Buffer
if err := runAgentPreflight(&out, deps); err != nil {
t.Fatalf("runAgentPreflight() error = %v", err)
}
got := out.String()
for _, want := range []string{"First-agent preflight", "✓ Go toolchain", "✓ micro binary", "✓ provider API key", "✓ local port :8080", "Ready for the first-agent walkthrough"} {
if !strings.Contains(got, want) {
t.Fatalf("output missing %q:\n%s", want, got)
}
}
}
func TestRunAgentPreflightReportsActionableFailures(t *testing.T) {
deps := preflightDeps{
lookPath: func(name string) (string, error) { return "", errors.New("not found") },
executable: func() (string, error) { return "", errors.New("unknown") },
getenv: func(key string) string { return "" },
listen: func(network, address string) (net.Listener, error) { return nil, errors.New("in use") },
}
var out bytes.Buffer
err := runAgentPreflight(&out, deps)
if err == nil {
t.Fatal("runAgentPreflight() error = nil")
}
got := out.String()
for _, want := range []string{"✗ Go toolchain", "go was not found on PATH", "https://go.dev/doc/install", "docs/guides/your-first-agent.html", "✗ micro binary", "go run ./cmd/micro agent preflight", "✗ provider API key", "docs/guides/no-secret-first-agent.html", "docs/guides/debugging-agents.html#provider-failures", "✗ local port :8080", "lsof -i :8080", "micro run --address"} {
if !strings.Contains(got, want) {
t.Fatalf("output missing %q:\n%s", want, got)
}
}
}
func TestRunAgentPreflightReportsOldGoVersion(t *testing.T) {
deps := preflightDeps{
lookPath: func(name string) (string, error) { return "/usr/bin/" + name, nil },
commandOutput: func(name string, args ...string) ([]byte, error) {
return []byte("go version go1.23.9 linux/amd64\n"), nil
},
executable: func() (string, error) { return "/usr/local/bin/micro", nil },
getenv: func(key string) string {
if key == "ANTHROPIC_API_KEY" {
return "set"
}
return ""
},
listen: func(network, address string) (net.Listener, error) { return stubListener{}, nil },
}
var out bytes.Buffer
err := runAgentPreflight(&out, deps)
if err == nil {
t.Fatal("runAgentPreflight() error = nil")
}
got := out.String()
for _, want := range []string{"✗ Go toolchain", "go1.23.9", "Upgrade to Go 1.24 or newer", "Rerun micro agent preflight"} {
if !strings.Contains(got, want) {
t.Fatalf("output missing %q:\n%s", want, got)
}
}
}
func TestGoVersionAtLeast(t *testing.T) {
tests := []struct {
line string
want bool
}{
{line: "go version go1.24.0 linux/amd64", want: true},
{line: "go version go1.25.1 linux/amd64", want: true},
{line: "go version go1.23.9 linux/amd64", want: false},
{line: "unexpected", want: false},
}
for _, tt := range tests {
if got := goVersionAtLeast(tt.line, 1, 24); got != tt.want {
t.Fatalf("goVersionAtLeast(%q) = %v, want %v", tt.line, got, tt.want)
}
}
}
func TestFirstLine(t *testing.T) {
if got := firstLine([]byte("one\ntwo")); got != "one" {
t.Fatalf("firstLine() = %q", got)
}
if got := firstLine([]byte(" single ")); got != "single" {
t.Fatalf("firstLine() = %q", got)
}
}
-35
View File
@@ -24,30 +24,6 @@ import (
_ "go-micro.dev/v6/cmd/micro/cli/remote"
)
const docsWayfinding = `First-agent and 0→hero docs:
1. No-secret first-agent transcript
https://go-micro.dev/docs/guides/no-secret-first-agent.html
Run the maintained support agent without a provider key:
go test ./internal/harness/zero-to-hero-ci -run TestNoSecretFirstAgentTranscript -count=1
2. Your First Agent
https://go-micro.dev/docs/guides/your-first-agent.html
Build a service-backed agent, then use:
micro agent preflight
micro run
micro chat
3. Debugging your agent
https://go-micro.dev/docs/guides/debugging-agents.html
Inspect agent runs and memory with:
micro inspect agent
micro runs <agent>
4. 0→hero Reference
https://go-micro.dev/docs/guides/zero-to-hero.html
Walk the scaffold → run → chat → inspect → deploy dry-run lifecycle.`
func genProtoHandler(c *cli.Context) error {
cmd := exec.Command("find", ".", "-name", "*.proto", "-exec", "protoc", "--proto_path=.", "--micro_out=.", "--go_out=.", `{}`, `;`)
cmd.Stdout = os.Stdout
@@ -120,17 +96,6 @@ func init() {
return nil
},
},
{
Name: "docs",
Usage: "Show the first-agent and 0→hero documentation path",
Description: `Print the maintained adoption on-ramp for new Go Micro developers:
the no-secret first-agent transcript, Your First Agent, debugging guide, and
0→hero lifecycle reference.`,
Action: func(ctx *cli.Context) error {
fmt.Fprintln(ctx.App.Writer, docsWayfinding)
return nil
},
},
{
Name: "call",
Usage: "Call a service",
-77
View File
@@ -1,77 +0,0 @@
package main
import (
"bytes"
"strings"
"testing"
"github.com/urfave/cli/v2"
microcmd "go-micro.dev/v6/cmd"
)
func TestFirstAgentWalkthroughCLIBoundaries(t *testing.T) {
commands := map[string]bool{}
subcommands := map[string]map[string]bool{}
for _, command := range microcmd.DefaultCmd.App().Commands {
commands[command.Name] = true
for _, subcommand := range command.Subcommands {
if subcommands[command.Name] == nil {
subcommands[command.Name] = map[string]bool{}
}
subcommands[command.Name][subcommand.Name] = true
}
}
for _, want := range []string{"new", "run", "chat", "inspect", "agent", "docs"} {
if !commands[want] {
t.Fatalf("first-agent walkthrough missing %q command", want)
}
}
if !subcommands["agent"]["preflight"] {
t.Fatal("first-agent walkthrough missing preflight boundary: agent preflight")
}
if !subcommands["inspect"]["agent"] {
t.Fatal("first-agent walkthrough missing inspect boundary: inspect agent")
}
chat := commandByName(t, "chat")
if !strings.Contains(chat.Description, "services") || !strings.Contains(chat.Description, "agent") {
t.Fatalf("micro chat should describe the service-to-agent walkthrough boundary; description was %q", chat.Description)
}
docs := commandByName(t, "docs")
if !strings.Contains(docs.Usage, "first-agent") || !strings.Contains(docs.Usage, "0→hero") {
t.Fatalf("micro docs should advertise the first-agent and 0→hero docs path; usage was %q", docs.Usage)
}
var out bytes.Buffer
app := cli.NewApp()
app.Writer = &out
if err := docs.Action(cli.NewContext(app, nil, nil)); err != nil {
t.Fatalf("micro docs failed: %v", err)
}
for _, want := range []string{
"no-secret-first-agent.html",
"your-first-agent.html",
"debugging-agents.html",
"zero-to-hero.html",
"micro agent preflight",
"micro run",
"micro chat",
"micro inspect agent",
} {
if !strings.Contains(out.String(), want) {
t.Fatalf("micro docs output missing %q:\n%s", want, out.String())
}
}
}
func commandByName(t *testing.T, name string) *cli.Command {
t.Helper()
for _, command := range microcmd.DefaultCmd.App().Commands {
if command.Name == name {
return command
}
}
t.Fatalf("missing command %q", name)
return nil
}
-21
View File
@@ -85,12 +85,6 @@ func writeAgentInspection(w io.Writer, name string, runs []goagent.RunSummary, a
fmt.Fprintf(w, " Agent %q runs\n", name)
for _, run := range runs {
fmt.Fprintf(w, " %s status=%s events=%d last=%s", run.RunID, run.Status, run.Events, run.LastKind)
if run.Checkpoint != "" {
fmt.Fprintf(w, " checkpoint=%s", run.Checkpoint)
}
if run.Stage != "" {
fmt.Fprintf(w, " stage=%s", run.Stage)
}
if run.LastError != "" {
fmt.Fprintf(w, " error=%q", run.LastError)
}
@@ -98,25 +92,10 @@ func writeAgentInspection(w io.Writer, name string, runs []goagent.RunSummary, a
fmt.Fprintf(w, " trace=%s", shortID(run.TraceID))
}
fmt.Fprintln(w)
if isResumableAgentRun(run) {
fmt.Fprintf(w, " resume: call micro.AgentResume(ctx, agent, %q) after recreating the agent with the same checkpoint store\n", run.RunID)
}
if run.Stage == "input-required" {
fmt.Fprintf(w, " input: call micro.AgentResumeInput(ctx, agent, %q, input) to continue the paused run\n", run.RunID)
}
}
return nil
}
func isResumableAgentRun(run goagent.RunSummary) bool {
switch run.Status {
case "running", "error", "failed", "refused":
return run.Checkpoint != "done" || run.Stage != ""
default:
return false
}
}
func inspectFlow(c *cli.Context) error {
name := c.Args().First()
if name == "" {
+2 -16
View File
@@ -11,27 +11,13 @@ import (
)
func TestWriteAgentInspectionIncludesActionableBreadcrumbs(t *testing.T) {
runs := []goagent.RunSummary{{RunID: "run-1", Status: "error", Events: 4, LastKind: "tool", LastError: "boom", TraceID: "1234567890abcdef", Checkpoint: "failed", Stage: "ask"}}
runs := []goagent.RunSummary{{RunID: "run-1", Status: "error", Events: 4, LastKind: "tool", LastError: "boom", TraceID: "1234567890abcdef"}}
var out bytes.Buffer
if err := writeAgentInspection(&out, "support", runs, false); err != nil {
t.Fatal(err)
}
got := out.String()
for _, want := range []string{"Agent \"support\" runs", "run-1", "status=error", "events=4", "last=tool", "checkpoint=failed", "stage=ask", `error="boom"`, "trace=1234567890ab", `micro.AgentResume(ctx, agent, "run-1")`} {
if !strings.Contains(got, want) {
t.Fatalf("output missing %q:\n%s", want, got)
}
}
}
func TestWriteAgentInspectionIncludesInputResumeBreadcrumb(t *testing.T) {
runs := []goagent.RunSummary{{RunID: "run-input", Status: "running", Events: 3, LastKind: "checkpoint", Checkpoint: "paused", Stage: "input-required"}}
var out bytes.Buffer
if err := writeAgentInspection(&out, "support", runs, false); err != nil {
t.Fatal(err)
}
got := out.String()
for _, want := range []string{"checkpoint=paused", "stage=input-required", `micro.AgentResumeInput(ctx, agent, "run-input", input)`} {
for _, want := range []string{"Agent \"support\" runs", "run-1", "status=error", "events=4", "last=tool", `error="boom"`, "trace=1234567890ab"} {
if !strings.Contains(got, want) {
t.Fatalf("output missing %q:\n%s", want, got)
}
-497
View File
@@ -1,497 +0,0 @@
// Package loop implements the 'micro loop' command, which scaffolds and
// verifies an autonomous improvement loop for a repository.
//
// The loop is a set of GitHub Actions workflows that dispatch a coding agent by
// @mention on a fresh tracking issue each run. It has up to five roles:
//
// planner keeps a ranked queue in .github/loop/PRIORITIES.md
// builder builds the top open item as a single-concern PR (auto-merged on green CI)
// triage turns CI failures into scoped fix issues back into the queue
// coherence keeps README/docs/CHANGELOG aligned with the North Star (opt-in)
// release cuts the next patch tag when the branch has new commits (opt-in)
//
// The workflows are the MECHANISM; each dispatch role's instruction lives in an
// editable .github/loop/prompts/<role>.md file — the POLICY. That split is what
// lets any repo (including go-micro itself) customize behavior by editing prompt
// files rather than forking the CLI. `micro loop init` writes it all; `micro
// loop verify` checks the wiring.
package loop
import (
"bytes"
"embed"
"fmt"
"os"
"os/exec"
"path/filepath"
"sort"
"strings"
"text/template"
"github.com/urfave/cli/v2"
"go-micro.dev/v6/cmd"
)
//go:embed templates/*
var templatesFS embed.FS
// config is the substitution surface for the templates — the whole config-vs-core
// boundary. The workflows and prompts are the reusable core; these are what a
// given repo tunes.
type config struct {
// Shared.
DefaultBranch string // base branch for the loop's PRs (e.g. main)
AgentMention string // how the workflows summon the agent (e.g. @codex)
TokenSecret string // repo secret holding the user PAT that drives dispatch
CIWorkflow string // human-readable CI workflow name(s) triage watches
CIWorkflowsYAML string // the same as a YAML array literal, e.g. ["Lint", "Run Tests"]
// Per-dispatch-role (set while rendering each one).
Role string
WorkflowName string
IssueTitle string
Group string
Cron string
// Release role.
TagPrefix string // tag prefix to match/bump, e.g. "v"
ReleaseCron string
}
// dispatchRole is a cron-driven role rendered from templates/dispatch.yml.tmpl.
type dispatchRole struct {
workflowName string
issueTitle string
group string
cronFlag string
defaultCron string
}
var dispatchRoles = map[string]dispatchRole{
"planner": {"Loop: Planner", "Loop: planning review", "loop-planner", "planner-cron", "0 * * * *"},
"builder": {"Loop: Builder", "Loop: build increment", "loop-builder", "builder-cron", "30 * * * *"},
"coherence": {"Loop: Coherence", "Loop: coherence review", "loop-coherence", "coherence-cron", "0 7 * * *"},
"security": {"Loop: Security", "Loop: security review", "loop-security", "security-cron", "0 6 * * 1"},
}
// allRoles is the full set, in a stable order, for --roles=all and help text.
var allRoles = []string{"planner", "builder", "triage", "coherence", "security", "release"}
const (
promptDir = ".github/loop/prompts"
loopDir = ".github/loop"
wfDir = ".github/workflows"
)
func init() {
cmd.Register(&cli.Command{
Name: "loop",
Usage: "Scaffold an autonomous improvement loop for a repository",
Description: `Set up a self-improving loop for a repo: GitHub Actions workflows that
dispatch a coding agent to plan, build, triage, and (optionally) keep docs
coherent and cut releases — gated by CI.
Roles (choose with --roles, default: planner,builder,triage):
planner keeps a ranked queue in .github/loop/PRIORITIES.md
builder builds the top open item as a single-concern PR (auto-merged on green CI)
triage turns CI failures into scoped fix issues back into the queue
coherence keeps README/docs/CHANGELOG aligned with the North Star
security audits for vulnerabilities and files them (fixes stay human-reviewed)
release cuts the next patch tag when the branch has new commits
Each dispatch role's instruction is an editable file in .github/loop/prompts/ —
edit those to steer behavior. Direction lives in .github/loop/NORTH_STAR.md.
Examples:
# Scaffold the default loop (planner, builder, triage)
micro loop init
# The full loop, all five roles
micro loop init --roles all
# Customize the agent, token secret, base branch, and CI workflow name
micro loop init --agent @codex --token-secret LOOP_TOKEN \
--branch main --ci-workflow CI
# Check that a repo is wired correctly
micro loop verify`,
Subcommands: []*cli.Command{
{
Name: "init",
Usage: "Scaffold the loop workflows, prompts, and queue into a repo",
Flags: []cli.Flag{
&cli.StringFlag{Name: "dir", Usage: "Target repo directory", Value: "."},
&cli.StringFlag{Name: "roles", Usage: "Comma-separated roles, or 'all'", Value: "planner,builder,triage"},
&cli.StringFlag{Name: "branch", Usage: "Base branch for the loop's PRs (auto-detected if empty)"},
&cli.StringFlag{Name: "agent", Usage: "How the workflows summon the agent (an @mention)", Value: "@codex"},
&cli.StringFlag{Name: "token-secret", Usage: "Repo secret holding the user PAT that drives dispatch", Value: "LOOP_TOKEN"},
&cli.StringFlag{Name: "ci-workflow", Usage: "CI workflow name(s) triage watches for failures (comma-separated)", Value: "CI"},
&cli.StringFlag{Name: "planner-cron", Usage: "Cron schedule for the planner", Value: "0 * * * *"},
&cli.StringFlag{Name: "builder-cron", Usage: "Cron schedule for the builder", Value: "30 * * * *"},
&cli.StringFlag{Name: "coherence-cron", Usage: "Cron schedule for the coherence role", Value: "0 7 * * *"},
&cli.StringFlag{Name: "security-cron", Usage: "Cron schedule for the security role", Value: "0 6 * * 1"},
&cli.StringFlag{Name: "release-cron", Usage: "Cron schedule for the release role", Value: "0 23 * * *"},
&cli.StringFlag{Name: "tag-prefix", Usage: "Tag prefix the release role matches and bumps", Value: "v"},
&cli.BoolFlag{Name: "force", Usage: "Overwrite existing loop files"},
},
Action: runInit,
},
{
Name: "verify",
Usage: "Verify a repo is wired for the loop",
Flags: []cli.Flag{&cli.StringFlag{Name: "dir", Usage: "Target repo directory", Value: "."}},
Action: runVerify,
},
},
})
}
func runInit(c *cli.Context) error {
dir := c.String("dir")
roles, err := parseRoles(c.String("roles"))
if err != nil {
return err
}
ciNames := splitCSV(c.String("ci-workflow"))
cfg := config{
DefaultBranch: c.String("branch"),
AgentMention: strings.TrimSpace(c.String("agent")),
TokenSecret: strings.TrimSpace(c.String("token-secret")),
CIWorkflow: strings.Join(ciNames, ", "),
CIWorkflowsYAML: yamlStringArray(ciNames),
TagPrefix: c.String("tag-prefix"),
ReleaseCron: c.String("release-cron"),
}
if cfg.DefaultBranch == "" {
cfg.DefaultBranch = detectDefaultBranch(dir)
}
if !strings.HasPrefix(cfg.AgentMention, "@") {
cfg.AgentMention = "@" + cfg.AgentMention
}
crons := map[string]string{
"planner": c.String("planner-cron"),
"builder": c.String("builder-cron"),
"coherence": c.String("coherence-cron"),
"security": c.String("security-cron"),
}
if err := scaffold(dir, cfg, roles, crons, c.Bool("force")); err != nil {
return err
}
printNextSteps(cfg, roles)
return nil
}
// parseRoles resolves the --roles flag into a validated, stable-ordered set.
func parseRoles(spec string) ([]string, error) {
if strings.TrimSpace(spec) == "all" {
return append([]string(nil), allRoles...), nil
}
want := map[string]bool{}
for _, r := range strings.Split(spec, ",") {
r = strings.TrimSpace(r)
if r == "" {
continue
}
if !isRole(r) {
return nil, fmt.Errorf("unknown role %q (valid: %s, or 'all')", r, strings.Join(allRoles, ", "))
}
want[r] = true
}
if len(want) == 0 {
return nil, fmt.Errorf("no roles selected")
}
var out []string
for _, r := range allRoles { // preserve canonical order
if want[r] {
out = append(out, r)
}
}
return out, nil
}
// splitCSV splits a comma-separated flag into trimmed, non-empty values.
func splitCSV(s string) []string {
var out []string
for _, v := range strings.Split(s, ",") {
if v = strings.TrimSpace(v); v != "" {
out = append(out, v)
}
}
if len(out) == 0 {
out = []string{"CI"}
}
return out
}
// yamlStringArray renders names as a YAML/JSON flow array, e.g. ["Lint", "Run Tests"].
// Names are known workflow display names (no embedded quotes), so a simple quote is safe.
func yamlStringArray(names []string) string {
quoted := make([]string, len(names))
for i, n := range names {
quoted[i] = fmt.Sprintf("%q", n)
}
return "[" + strings.Join(quoted, ", ") + "]"
}
func isRole(r string) bool {
for _, x := range allRoles {
if x == r {
return true
}
}
return false
}
// scaffold renders the selected roles into dir. The split is deliberate:
// - Workflows are the MECHANISM — regenerated, and overwritten with --force.
// - Prompts, NORTH_STAR, and PRIORITIES are the POLICY — written once and
// never clobbered, even with --force, so re-running init to refresh the
// workflow mechanics can't wipe curated instructions, direction, or queue.
func scaffold(dir string, cfg config, roles []string, crons map[string]string, force bool) error {
for _, role := range roles {
switch role {
case "triage":
if err := renderTo(dir, "templates/loop-triage.yml.tmpl", filepath.Join(wfDir, "loop-triage.yml"), cfg, force); err != nil {
return err
}
if err := renderKeep(dir, "templates/prompts/triage.md.tmpl", filepath.Join(promptDir, "triage.md"), cfg); err != nil {
return err
}
case "release":
if err := renderTo(dir, "templates/loop-release.yml.tmpl", filepath.Join(wfDir, "loop-release.yml"), cfg, force); err != nil {
return err
}
default: // dispatch roles
d := dispatchRoles[role]
rc := cfg
rc.Role = role
rc.WorkflowName = d.workflowName
rc.IssueTitle = d.issueTitle
rc.Group = d.group
rc.Cron = crons[role]
if rc.Cron == "" {
rc.Cron = d.defaultCron
}
if err := renderTo(dir, "templates/dispatch.yml.tmpl", filepath.Join(wfDir, "loop-"+role+".yml"), rc, force); err != nil {
return err
}
if err := renderKeep(dir, "templates/prompts/"+role+".md.tmpl", filepath.Join(promptDir, role+".md"), cfg); err != nil {
return err
}
}
}
// Direction + queue: policy, written once, never clobbered.
if err := renderKeep(dir, "templates/NORTH_STAR.md", filepath.Join(loopDir, "NORTH_STAR.md"), cfg); err != nil {
return err
}
return renderKeep(dir, "templates/PRIORITIES.md", filepath.Join(loopDir, "PRIORITIES.md"), cfg)
}
// renderTo renders a template with cfg and writes it to dir/dest (honoring force).
func renderTo(dir, tmplName, dest string, cfg config, force bool) error {
rendered, err := render(tmplName, cfg)
if err != nil {
return err
}
if err := writeFile(filepath.Join(dir, dest), rendered, force); err != nil {
return err
}
fmt.Printf(" wrote %s\n", dest)
return nil
}
// renderKeep writes dir/dest only if it does not already exist — used for
// policy files (prompts, North Star, queue) so re-running init never clobbers
// customizations, regardless of --force.
func renderKeep(dir, tmplName, dest string, cfg config) error {
full := filepath.Join(dir, dest)
if fileExists(full) {
fmt.Printf(" kept %s (already exists)\n", dest)
return nil
}
rendered, err := render(tmplName, cfg)
if err != nil {
return err
}
if err := writeFile(full, rendered, true); err != nil {
return err
}
fmt.Printf(" wrote %s\n", dest)
return nil
}
// verifyState reports what's wrong with dir's loop setup: warnings are
// non-fatal, missing are required files that aren't present.
func verifyState(dir string) (warnings, missing []string) {
// A loop needs direction, a queue, and at least one role workflow.
for _, dest := range []string{filepath.Join(loopDir, "NORTH_STAR.md"), filepath.Join(loopDir, "PRIORITIES.md")} {
if !fileExists(filepath.Join(dir, dest)) {
missing = append(missing, dest)
}
}
present := presentLoopWorkflows(dir)
if len(present) == 0 {
missing = append(missing, wfDir+"/loop-*.yml (no role workflows found)")
}
// Every dispatch/triage role workflow needs its prompt file. (release has none.)
for _, role := range present {
if role == "release" {
continue
}
prompt := filepath.Join(promptDir, role+".md")
if !fileExists(filepath.Join(dir, prompt)) {
missing = append(missing, prompt+" (prompt for the loop-"+role+" workflow)")
}
}
// The loop is only as good as its gate.
if !hasCIWorkflow(dir) {
warnings = append(warnings, "no non-loop workflow found in "+wfDir+" — the loop needs a CI gate (build/test/lint) to merge safely")
}
return warnings, missing
}
// presentLoopWorkflows returns the role names for which a loop-<role>.yml exists.
func presentLoopWorkflows(dir string) []string {
entries, err := os.ReadDir(filepath.Join(dir, wfDir))
if err != nil {
return nil
}
var out []string
for _, e := range entries {
name := e.Name()
if !strings.HasPrefix(name, "loop-") {
continue
}
role := strings.TrimSuffix(strings.TrimSuffix(strings.TrimPrefix(name, "loop-"), ".yml"), ".yaml")
out = append(out, role)
}
sort.Strings(out)
return out
}
func runVerify(c *cli.Context) error {
dir := c.String("dir")
warnings, missing := verifyState(dir)
for _, m := range missing {
fmt.Printf(" MISSING %s\n", m)
}
for _, w := range warnings {
fmt.Printf(" WARN %s\n", w)
}
if len(missing) > 0 {
return fmt.Errorf("loop is not fully scaffolded (%d item(s) missing) — run `micro loop init`", len(missing))
}
fmt.Printf(" OK loop is wired: %s\n", strings.Join(presentLoopWorkflows(dir), ", "))
fmt.Println()
fmt.Println("Reminders the CLI can't check:")
fmt.Println(" • The token secret must be set in the repo (Settings → Secrets).")
fmt.Println(" • Branch protection must require the CI checks with 0 approvals,")
fmt.Println(" so the builder's auto-merge can land PRs on green CI.")
if len(warnings) > 0 {
return fmt.Errorf("%d warning(s) — see above", len(warnings))
}
return nil
}
func render(tmplName string, cfg config) ([]byte, error) {
b, err := templatesFS.ReadFile(tmplName)
if err != nil {
return nil, err
}
// Custom delimiters so GitHub Actions' own ${{ }} expressions pass through
// untouched — only << >> placeholders are substituted.
t, err := template.New(filepath.Base(tmplName)).Delims("<<", ">>").Option("missingkey=error").Parse(string(b))
if err != nil {
return nil, fmt.Errorf("parse %s: %w", tmplName, err)
}
var buf bytes.Buffer
if err := t.Execute(&buf, cfg); err != nil {
return nil, fmt.Errorf("render %s: %w", tmplName, err)
}
return buf.Bytes(), nil
}
func writeFile(path string, content []byte, force bool) error {
if fileExists(path) && !force {
return fmt.Errorf("%s already exists (use --force to overwrite)", path)
}
if err := os.MkdirAll(filepath.Dir(path), 0o755); err != nil {
return err
}
return os.WriteFile(path, content, 0o644)
}
func fileExists(path string) bool {
info, err := os.Stat(path)
return err == nil && !info.IsDir()
}
// hasCIWorkflow reports whether .github/workflows holds any workflow that is
// not one of the loop's own (i.e. a plausible CI gate).
func hasCIWorkflow(dir string) bool {
entries, err := os.ReadDir(filepath.Join(dir, wfDir))
if err != nil {
return false
}
for _, e := range entries {
if e.IsDir() {
continue
}
name := e.Name()
if strings.HasPrefix(name, "loop-") {
continue
}
if strings.HasSuffix(name, ".yml") || strings.HasSuffix(name, ".yaml") {
return true
}
}
return false
}
// detectDefaultBranch best-effort resolves the repo's default branch, falling
// back to "main".
func detectDefaultBranch(dir string) string {
out, err := exec.Command("git", "-C", dir, "symbolic-ref", "--short", "refs/remotes/origin/HEAD").Output()
if err == nil {
ref := strings.TrimSpace(string(out))
if i := strings.LastIndex(ref, "/"); i >= 0 {
ref = ref[i+1:]
}
if ref != "" {
return ref
}
}
return "main"
}
func printNextSteps(cfg config, roles []string) {
fmt.Printf(`
Loop scaffolded (%s). Next steps (the CLI can't do these for you):
1. Edit .github/loop/NORTH_STAR.md — the direction the loop aligns to.
Seed .github/loop/PRIORITIES.md with a few real items.
Tune the per-role instructions in .github/loop/prompts/ if you like.
2. Add a repo secret named %s: a fine-grained user PAT (contents + pull
requests + issues write) for an account the agent (%s) responds to.
The workflows no-op until this secret exists.
3. Ensure a CI workflow named %q exists and that branch protection on %q
requires its checks with 0 approving reviews — that green-CI gate is
what lets the builder auto-merge safely.
4. Commit these files, then trigger a run from the Actions tab.
Verify anytime with: micro loop verify
`, strings.Join(roles, ", "), cfg.TokenSecret, cfg.AgentMention, cfg.CIWorkflow, cfg.DefaultBranch)
}
-283
View File
@@ -1,283 +0,0 @@
package loop
import (
"os"
"path/filepath"
"strings"
"testing"
)
var testCfg = config{
DefaultBranch: "main",
AgentMention: "@codex",
TokenSecret: "LOOP_TOKEN",
CIWorkflow: "CI",
CIWorkflowsYAML: `["CI"]`,
TagPrefix: "v",
ReleaseCron: "0 23 * * *",
}
var testCrons = map[string]string{"planner": "0 * * * *", "builder": "30 * * * *", "coherence": "0 7 * * *"}
// renderable is every template a full scaffold touches, with the per-role config
// applied the same way scaffold does.
func renderCases() map[string]config {
cases := map[string]config{
"templates/loop-triage.yml.tmpl": testCfg,
"templates/loop-release.yml.tmpl": testCfg,
"templates/prompts/triage.md.tmpl": testCfg,
"templates/prompts/planner.md.tmpl": testCfg,
"templates/prompts/builder.md.tmpl": testCfg,
"templates/prompts/coherence.md.tmpl": testCfg,
"templates/prompts/security.md.tmpl": testCfg,
}
for role, d := range dispatchRoles {
rc := testCfg
rc.Role, rc.WorkflowName, rc.IssueTitle, rc.Group, rc.Cron = role, d.workflowName, d.issueTitle, d.group, d.defaultCron
cases["dispatch:"+role] = rc
}
return cases
}
func TestRenderIsPlaceholderFreeAndKeepsGHAExpressions(t *testing.T) {
for name, cfg := range renderCases() {
tmplName := name
if strings.HasPrefix(name, "dispatch:") {
tmplName = "templates/dispatch.yml.tmpl"
}
rendered, err := render(tmplName, cfg)
if err != nil {
t.Fatalf("render %s: %v", name, err)
}
s := string(rendered)
// No unresolved substitution delimiters remain in any template.
if strings.Contains(s, "<<") || strings.Contains(s, ">>") {
t.Errorf("%s still contains << >> placeholders", name)
}
}
}
func TestBaseBranchSubstitutedIntoPrompts(t *testing.T) {
// The base branch appears in the PR-opening instructions of these prompts.
for _, p := range []string{"planner", "builder", "coherence", "security"} {
s := mustRender(t, "templates/prompts/"+p+".md.tmpl", testCfg)
if !strings.Contains(s, "--base main") {
t.Errorf("%s prompt missing substituted base branch", p)
}
}
}
func TestWorkflowTemplatesPreserveGHAAndAreStructural(t *testing.T) {
// Only the workflow YAML templates (not the markdown prompts).
wf := map[string]config{
"templates/loop-triage.yml.tmpl": testCfg,
"templates/loop-release.yml.tmpl": testCfg,
}
for role, d := range dispatchRoles {
rc := testCfg
rc.Role, rc.WorkflowName, rc.IssueTitle, rc.Group, rc.Cron = role, d.workflowName, d.issueTitle, d.group, d.defaultCron
wf["dispatch:"+role] = rc
}
for name, cfg := range wf {
tmplName := name
if strings.HasPrefix(name, "dispatch:") {
tmplName = "templates/dispatch.yml.tmpl"
}
s := mustRender(t, tmplName, cfg)
if !strings.Contains(s, "${{ secrets.LOOP_TOKEN") {
t.Errorf("%s lost its ${{ secrets.LOOP_TOKEN }} expression", name)
}
for _, key := range []string{"name:", "on:", "jobs:"} {
if !strings.Contains(s, key) {
t.Errorf("%s missing top-level %q", name, key)
}
}
}
}
func TestDispatchWorkflowsStripPromptComments(t *testing.T) {
// The posted body must not include the prompt's editorial <!-- --> header;
// the workflow strips it. Guard the sed directive in both dispatch paths.
rc := testCfg
d := dispatchRoles["planner"]
rc.Role, rc.WorkflowName, rc.IssueTitle, rc.Group, rc.Cron = "planner", d.workflowName, d.issueTitle, d.group, d.defaultCron
for _, tc := range []struct {
name, tmpl string
cfg config
}{
{"dispatch", "templates/dispatch.yml.tmpl", rc},
{"triage", "templates/loop-triage.yml.tmpl", testCfg},
} {
s := mustRender(t, tc.tmpl, tc.cfg)
if !strings.Contains(s, `/<!--/,/-->/d`) {
t.Errorf("%s workflow does not strip prompt HTML comments before posting", tc.name)
}
}
}
func TestPromptsLeaveRuntimeTokensLiteral(t *testing.T) {
// __ISSUE__ must survive render (the workflow substitutes it at runtime).
for _, p := range []string{"planner", "builder", "coherence", "triage", "security"} {
s := mustRender(t, "templates/prompts/"+p+".md.tmpl", testCfg)
if !strings.Contains(s, "__ISSUE__") {
t.Errorf("%s prompt lost its __ISSUE__ runtime token", p)
}
}
// triage additionally uses __RUNURL__.
if s := mustRender(t, "templates/prompts/triage.md.tmpl", testCfg); !strings.Contains(s, "__RUNURL__") {
t.Error("triage prompt lost its __RUNURL__ runtime token")
}
}
func TestScaffoldAllRolesWritesEverything(t *testing.T) {
dir := t.TempDir()
mustWrite(t, filepath.Join(dir, wfDir, "ci.yml"), "name: CI\n")
roles := []string{"planner", "builder", "triage", "coherence", "security", "release"}
if err := scaffold(dir, testCfg, roles, testCrons, false); err != nil {
t.Fatalf("scaffold: %v", err)
}
wantWorkflows := []string{"loop-planner.yml", "loop-builder.yml", "loop-triage.yml", "loop-coherence.yml", "loop-security.yml", "loop-release.yml"}
for _, w := range wantWorkflows {
if !fileExists(filepath.Join(dir, wfDir, w)) {
t.Errorf("expected %s", w)
}
}
// Dispatch + triage roles have prompts; release does not.
for _, p := range []string{"planner.md", "builder.md", "triage.md", "coherence.md", "security.md"} {
if !fileExists(filepath.Join(dir, promptDir, p)) {
t.Errorf("expected prompt %s", p)
}
}
if fileExists(filepath.Join(dir, promptDir, "release.md")) {
t.Error("release should not have a prompt")
}
if _, missing := verifyState(dir); len(missing) != 0 {
t.Errorf("verify reported missing after full scaffold: %v", missing)
}
}
func TestScaffoldDefaultRolesOmitsOptional(t *testing.T) {
dir := t.TempDir()
if err := scaffold(dir, testCfg, []string{"planner", "builder", "triage"}, testCrons, false); err != nil {
t.Fatalf("scaffold: %v", err)
}
if fileExists(filepath.Join(dir, wfDir, "loop-coherence.yml")) {
t.Error("coherence should not be written by default")
}
if fileExists(filepath.Join(dir, wfDir, "loop-release.yml")) {
t.Error("release should not be written by default")
}
}
func TestReinitForceKeepsPromptsRefreshesWorkflows(t *testing.T) {
dir := t.TempDir()
roles := []string{"planner", "builder", "triage"}
if err := scaffold(dir, testCfg, roles, testCrons, false); err != nil {
t.Fatalf("scaffold: %v", err)
}
// Customize a prompt and edit direction/queue, as a real user would.
customPrompt := filepath.Join(dir, promptDir, "builder.md")
mustWrite(t, customPrompt, "MY CUSTOM BUILDER POLICY")
northStar := filepath.Join(dir, loopDir, "NORTH_STAR.md")
mustWrite(t, northStar, "MY MISSION")
// Re-run with --force to refresh workflow mechanics.
if err := scaffold(dir, testCfg, roles, testCrons, true); err != nil {
t.Fatalf("re-scaffold --force: %v", err)
}
// Policy (prompt, North Star) must survive --force untouched.
if b, _ := os.ReadFile(customPrompt); string(b) != "MY CUSTOM BUILDER POLICY" {
t.Errorf("--force clobbered a customized prompt: %q", b)
}
if b, _ := os.ReadFile(northStar); string(b) != "MY MISSION" {
t.Errorf("--force clobbered the North Star: %q", b)
}
// Mechanism (workflow) must be regenerated (present and non-empty).
if b, _ := os.ReadFile(filepath.Join(dir, wfDir, "loop-builder.yml")); !strings.Contains(string(b), "Loop: Builder") {
t.Error("--force did not refresh the workflow")
}
}
func TestCIWorkflowListRendersAsYAMLArray(t *testing.T) {
if got := yamlStringArray([]string{"Harness (E2E)", "Lint", "Run Tests"}); got != `["Harness (E2E)", "Lint", "Run Tests"]` {
t.Errorf("yamlStringArray = %q", got)
}
if got := splitCSV("Harness (E2E), Lint ,Run Tests"); strings.Join(got, "|") != "Harness (E2E)|Lint|Run Tests" {
t.Errorf("splitCSV = %v", got)
}
if got := splitCSV(" "); strings.Join(got, "|") != "CI" {
t.Errorf("splitCSV empty should default to CI, got %v", got)
}
// The triage workflow must embed the array so workflow_run watches all of them.
cfg := testCfg
cfg.CIWorkflowsYAML = `["Harness (E2E)", "Lint", "Run Tests"]`
s := mustRender(t, "templates/loop-triage.yml.tmpl", cfg)
if !strings.Contains(s, `workflows: ["Harness (E2E)", "Lint", "Run Tests"]`) {
t.Errorf("triage workflow does not watch the CI workflow list:\n%s", s)
}
}
func TestParseRoles(t *testing.T) {
if got, err := parseRoles("all"); err != nil || len(got) != len(allRoles) {
t.Errorf("all => %v, %v", got, err)
}
// Canonical order preserved regardless of input order.
got, err := parseRoles("release,planner")
if err != nil {
t.Fatal(err)
}
if strings.Join(got, ",") != "planner,release" {
t.Errorf("expected canonical order planner,release; got %v", got)
}
if _, err := parseRoles("bogus"); err == nil {
t.Error("expected error for unknown role")
}
if _, err := parseRoles(""); err == nil {
t.Error("expected error for empty roles")
}
}
func TestVerifyMissingPromptFails(t *testing.T) {
dir := t.TempDir()
if err := scaffold(dir, testCfg, []string{"planner", "builder", "triage"}, testCrons, false); err != nil {
t.Fatalf("scaffold: %v", err)
}
// Delete a prompt → verify must flag it.
if err := os.Remove(filepath.Join(dir, promptDir, "builder.md")); err != nil {
t.Fatal(err)
}
_, missing := verifyState(dir)
found := false
for _, m := range missing {
if strings.Contains(m, "builder.md") {
found = true
}
}
if !found {
t.Errorf("expected verify to flag the missing builder prompt; got %v", missing)
}
}
func mustRender(t *testing.T, tmplName string, cfg config) string {
t.Helper()
b, err := render(tmplName, cfg)
if err != nil {
t.Fatalf("render %s: %v", tmplName, err)
}
return string(b)
}
func mustWrite(t *testing.T, path, content string) {
t.Helper()
if err := os.MkdirAll(filepath.Dir(path), 0o755); err != nil {
t.Fatal(err)
}
if err := os.WriteFile(path, []byte(content), 0o644); err != nil {
t.Fatal(err)
}
}
-23
View File
@@ -1,23 +0,0 @@
# North Star
> **Edit this file.** It is the single source of direction the loop aligns every
> increment to. The planner ranks work against it; the builder builds toward it.
> Be concrete — vague direction produces vague increments.
## Mission
<One or two sentences: the problem this repository solves and who it's for.>
## Right now
<The current priority — what "better" means this month. The planner weights the
queue toward this.>
## Guardrails
- One concern per PR; small and reversible.
- The gate is green CI, not a human review — keep the test/lint suite strong,
because the loop is only as good as its evaluator.
- **Off-limits without a human** (surface as notes, never auto-merge): breaking
public API changes, brand/positioning/marketing copy, new dependencies,
architectural rewrites, product-default changes with broad behavioral impact.
-16
View File
@@ -1,16 +0,0 @@
# Priorities
A single ranked queue, highest-value first. Each item links a scoped issue the
loop can build and CI can verify. The **planner** keeps this current; the
**builder** takes the top item whose issue is still open.
<!--
Seed this with a few real items to give the loop a running start, e.g.:
1. Add retry with backoff to the HTTP client — #123
2. Document the config file format — #124
3. Fix flaky timeout in the cache tests — #125
The planner will re-rank, drop completed items, and file issues for new gaps.
Reorder or edit this file at any time to redirect the loop.
-->
@@ -1,60 +0,0 @@
name: "<< .WorkflowName >>"
# Generated by `micro loop init`. A dispatch role of the autonomous loop: on a
# cadence it opens a fresh tracking issue and posts the instruction in
# .github/loop/prompts/<< .Role >>.md to the agent (<< .AgentMention >>).
#
# The workflow is the MECHANISM; that prompt file is the editable POLICY —
# change what this role does by editing the prompt, not this YAML. A FRESH
# issue per run is deliberate: agents derive the PR branch name from the
# triggering issue, so reusing one tracker collapses every run onto one branch.
#
# Gated on << .TokenSecret >>: the agent ignores @mentions from the
# github-actions bot, so dispatch posts as a real user (a PAT). No token → no-op.
on:
workflow_dispatch: {}
schedule:
- cron: "<< .Cron >>"
permissions:
issues: write
concurrency:
group: << .Group >>
cancel-in-progress: false
jobs:
dispatch:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch << .Role >>
env:
GH_TOKEN: ${{ secrets.<< .TokenSecret >> || github.token }}
HAS_TOKEN: ${{ secrets.<< .TokenSecret >> != '' }}
REPO: ${{ github.repository }}
RUN_NUMBER: ${{ github.run_number }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "<< .TokenSecret >> is not set — skipping (the agent ignores bot @mentions)."
exit 0
fi
PROMPT=".github/loop/prompts/<< .Role >>.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "<< .IssueTitle >> #$RUN_NUMBER" \
--body "Autonomous << .Role >> pass. Direction: .github/loop/NORTH_STAR.md; queue: .github/loop/PRIORITIES.md.")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching << .Role >>."
# The prompt file is the policy; strip its editorial <!-- --> header and
# substitute the tracking issue number (__ISSUE__) at runtime.
{
echo "<< .AgentMention >>"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
@@ -1,76 +0,0 @@
name: "Loop: Release"
# Generated by `micro loop init`. Cuts the next PATCH tag
# (<< .TagPrefix >>MAJOR.MINOR.PATCH+1) when the default branch has new commits
# since the latest such tag, and pushes it with a PAT (<< .TokenSecret >>) so any
# tag-triggered release workflow fires. Minor/major bumps stay with a human.
#
# The tag MUST be pushed with a PAT, not the default GITHUB_TOKEN: a tag pushed
# by GITHUB_TOKEN does not trigger other workflows (Actions blocks that recursion).
on:
workflow_dispatch: {}
schedule:
- cron: "<< .ReleaseCron >>"
permissions:
contents: read
concurrency:
group: loop-release
cancel-in-progress: false
jobs:
release:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
with:
fetch-depth: 0 # need full history + all tags
# Do NOT persist the default GITHUB_TOKEN as a git credential: it would
# be sent on the PAT push below and override it, so the tag push would
# authenticate as github-actions[bot] and 403. Letting the PAT in the
# push URL be the only credential is the whole point.
persist-credentials: false
- name: Cut the next patch tag if there are new commits
env:
RELEASE_TOKEN: ${{ secrets.<< .TokenSecret >> }}
REPO: ${{ github.repository }}
run: |
if [ -z "$RELEASE_TOKEN" ]; then
echo "<< .TokenSecret >> is not set — skipping."
exit 0
fi
git fetch --tags --force
LATEST=$(git tag --list '<< .TagPrefix >>*.*.*' --sort=-v:refname | head -1)
if [ -z "$LATEST" ]; then
echo "no << .TagPrefix >>MAJOR.MINOR.PATCH tag found — aborting so nothing weird gets tagged."
exit 1
fi
echo "latest tag: $LATEST"
COUNT=$(git rev-list --count "$LATEST"..HEAD)
echo "commits since $LATEST: $COUNT"
if [ "$COUNT" -eq 0 ]; then
echo "no new commits since $LATEST — no release."
exit 0
fi
ver="${LATEST#<< .TagPrefix >>}"
major="${ver%%.*}"
rest="${ver#*.}"
minor="${rest%%.*}"
patch="${rest#*.}"
case "$major.$minor.$patch" in
[0-9]*.[0-9]*.[0-9]*) ;;
*) echo "unexpected tag shape: $LATEST" ; exit 1 ;;
esac
NEXT="<< .TagPrefix >>${major}.${minor}.$((patch + 1))"
echo "cutting: $NEXT ($COUNT commits since $LATEST)"
git config user.name "loop release bot"
git config user.email "noreply@users.noreply.github.com"
git tag -a "$NEXT" -m "Release $NEXT — automated patch ($COUNT commits since $LATEST)"
git push "https://x-access-token:${RELEASE_TOKEN}@github.com/${REPO}.git" "$NEXT"
echo "Pushed $NEXT."
@@ -1,57 +0,0 @@
name: "Loop: Triage"
# Generated by `micro loop init`. The feedback path of the evaluator: when a CI
# workflow (<< .CIWorkflow >>) fails on a non-PR run, dispatch the agent
# (<< .AgentMention >>) with the instruction in .github/loop/prompts/triage.md
# to root-cause the failure and file scoped fix issues back into the queue — so
# failures become fixes with no human in the middle. Gated on << .TokenSecret >>.
on:
workflow_run:
workflows: << .CIWorkflowsYAML >>
types: [completed]
permissions:
issues: write
concurrency:
group: loop-triage
cancel-in-progress: false
jobs:
triage:
# Only real failures on branch pushes/schedules — not PR-run failures, which
# the PR author already sees.
if: ${{ github.event.workflow_run.conclusion == 'failure' && github.event.workflow_run.event != 'pull_request' }}
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4 # needed to read the prompt file
- name: Dispatch triage
env:
GH_TOKEN: ${{ secrets.<< .TokenSecret >> || github.token }}
HAS_TOKEN: ${{ secrets.<< .TokenSecret >> != '' }}
REPO: ${{ github.repository }}
RUN_ID: ${{ github.event.workflow_run.id }}
RUN_URL: ${{ github.event.workflow_run.html_url }}
WORKFLOW_NAME: ${{ github.event.workflow_run.name }}
run: |
if [ "$HAS_TOKEN" != "true" ]; then
echo "<< .TokenSecret >> is not set — skipping."
exit 0
fi
PROMPT=".github/loop/prompts/triage.md"
if [ ! -f "$PROMPT" ]; then
echo "missing $PROMPT — run 'micro loop init'." >&2
exit 1
fi
ISSUE_URL=$(gh issue create --repo "$REPO" \
--title "Loop: triage failed run $RUN_ID ($WORKFLOW_NAME)" \
--body "The '$WORKFLOW_NAME' workflow failed on a non-PR run: $RUN_URL")
ISSUE_NUM="${ISSUE_URL##*/}"
echo "Opened issue #$ISSUE_NUM — dispatching triage."
{
echo "<< .AgentMention >>"
echo
sed -e '/<!--/,/-->/d' -e "s/__ISSUE__/$ISSUE_NUM/g" -e "s#__RUNURL__#$RUN_URL#g" "$PROMPT"
} > "$RUNNER_TEMP/loop-body.md"
gh issue comment "$ISSUE_NUM" --repo "$REPO" --body-file "$RUNNER_TEMP/loop-body.md"
@@ -1,14 +0,0 @@
<!--
The BUILDER prompt — the editable policy for the builder role. The workflow
prepends the agent @mention and substitutes __ISSUE__ before posting. Keep
__ISSUE__ literal.
-->
Build one increment for this repository, aligned to `.github/loop/NORTH_STAR.md`.
PICK THE WORK: take the highest-ranked item in `.github/loop/PRIORITIES.md` whose linked issue is still OPEN — that is your task, and its issue is the one you close. If the queue is empty or every item's issue is closed, pick the single highest-value improvement yourself.
Implement it, then VERIFY the project builds, tests, and lints (use the commands documented in the README or the CI workflow).
Open the PR YOURSELF from the shell — do NOT use a make_pr tool (it may be a no-op stub): `git switch -c loop/increment-__ISSUE__`, `git push -u origin loop/increment-__ISSUE__`, `gh pr create --base << .DefaultBranch >> --title "<title>" --body "<body; include 'Closes #<the item's issue>' so it leaves the queue, and 'Closes #__ISSUE__' for this run's tracker>"`, then `gh pr merge --squash --auto --delete-branch` so it lands once CI is green.
One concern per PR. Stay out of breaking public API changes and brand/positioning copy — surface those as notes for a human instead.
@@ -1,14 +0,0 @@
<!--
The COHERENCE (DevRel) prompt — the editable policy for the coherence role. The
workflow prepends the agent @mention and substitutes __ISSUE__ before posting.
Keep __ISSUE__ literal.
-->
Act as DevRel for this repository — keep the public story coherent and honest.
Audit the public surface — `README`, docs, and any website/blog — for coherence with `.github/loop/NORTH_STAR.md`: places that contradict each other, are stale, or describe behavior that has since changed (cross-check against the code and recently merged PRs). If the repo keeps a `CHANGELOG.md`, reconcile its `[Unreleased]` section against what actually merged.
SAFE factual-alignment and crispness fixes (and the CHANGELOG upkeep): open ONE PR and auto-merge it — `git switch -c loop/coherence-__ISSUE__`, `git push -u origin loop/coherence-__ISSUE__`, `gh pr create --base << .DefaultBranch >> --title "<title>" --body "<summary, Closes #__ISSUE__>"`, then `gh pr merge --squash --auto --delete-branch`.
Brand / positioning / marketing copy and any opinion blog posts are NOT auto-merge material — the public voice stays with a human. Describe them in a comment on this issue, or open a PR WITHOUT enabling auto-merge, and leave it for review.
Post a short findings report as a comment on this issue (#__ISSUE__): what's aligned, what drifted, what you fixed. Open PRs yourself from the shell with `gh`; do not use a make_pr tool.
@@ -1,15 +0,0 @@
<!--
The PLANNER prompt. This file is the editable policy for the planner role —
change what the planner does by editing this text. The workflow prepends the
agent @mention and substitutes __ISSUE__ (this run's tracking issue) before
posting it. Keep __ISSUE__ literal.
-->
Act as the planner for this repository.
(1) Read `.github/loop/NORTH_STAR.md` for direction, then scan recently merged PRs and open issues so the queue reflects reality — drop done items, don't re-queue work already in flight.
(2) Maintain a SINGLE ranked queue in `.github/loop/PRIORITIES.md`, highest-value first, each item linking a scoped, CI-verifiable issue (#N). For any prioritized gap that has no issue, file one: `gh issue create --title "<scoped task>" --body "<goal, scope, acceptance criteria>"`.
(3) If the ranking actually changed, open ONE PR for `PRIORITIES.md`: `git switch -c loop/planner-__ISSUE__`, `git push -u origin loop/planner-__ISSUE__`, `gh pr create --base << .DefaultBranch >> --title "<title>" --body "<summary, Closes #__ISSUE__>"`, then `gh pr merge --squash --auto --delete-branch`. If the queue is already accurate, just close this issue (`gh issue close __ISSUE__`).
Do NOT make breaking or architectural changes yourself — surface those as notes for a human. Open the PR yourself from the shell with `gh`; do not use a make_pr tool (it may be a no-op stub).
@@ -1,22 +0,0 @@
<!--
The SECURITY prompt — the editable policy for the security role. The workflow
prepends the agent @mention and substitutes __ISSUE__ before posting. Keep
__ISSUE__ literal.
Security is deliberately more conservative than the other roles: it does NOT
auto-merge fixes, and it does NOT publish exploit details in public issues.
-->
Act as the security reviewer for this repository. Audit for real, exploitable vulnerabilities — do not pad the report with theoretical or low-value lint-style noise.
WHAT TO LOOK FOR: injection (SQL/command/template), authentication and authorization bypass, credential/secret/token exposure (in code, logs, or error messages), SSRF and unsafe outbound requests (especially user- or config-controlled URLs), path traversal, unsafe deserialization, missing or incorrect input validation on trust boundaries (HTTP handlers, RPC endpoints, message consumers), insecure defaults (TLS, auth, permissions), unsafe use of `crypto`/randomness, and known-vulnerable dependencies (run `govulncheck ./...` if available, or inspect `go.mod`).
DEDUPE against open issues before filing anything.
HOW TO REPORT — this matters:
- **Known/public dependency CVEs** (already disclosed): file an issue labeled `security` referencing the CVE and the affected module, and you MAY open a PR that bumps the dependency to the patched version. Do **NOT** enable auto-merge — leave it for human review.
- **Novel, exploitable vulnerabilities in this codebase** (not yet public): do **NOT** post a working exploit, proof-of-concept, or step-by-step reproduction in a public issue — that is irresponsible disclosure. File a CONCISE issue labeled `security` and `needs-human` that names the vulnerability *class*, the *location* (file/function), and the *impact*, with only enough detail for a maintainer to find it — and note it should be handled via the repository's private vulnerability reporting if the repo is public. Do NOT open a public fix PR that reveals the vulnerability; leave the fix to a human.
- **Low-risk hardening** (defense-in-depth, missing validation with no proven exploit): a normal `security` issue is fine.
NEVER auto-merge a security change. Never weaken a control to make a test pass. Anything requiring an architectural or breaking change: label it `needs-human` and describe the tradeoff.
Post a summary as a comment on this issue (#__ISSUE__) — how many findings by severity, what you filed, and what needs a human — then close it (`gh issue close __ISSUE__`). If you open a dependency-bump PR, do it yourself from the shell: `git switch -c loop/security-__ISSUE__`, `git push -u origin loop/security-__ISSUE__`, `gh pr create --base << .DefaultBranch >> --title "<title>" --body "<summary, Closes #__ISSUE__>"` — then STOP; do NOT run `gh pr merge --auto`. Do not use a make_pr tool.
@@ -1,14 +0,0 @@
<!--
The TRIAGE prompt — the editable policy for the triage role. The workflow
prepends the agent @mention and substitutes __ISSUE__ (this tracking issue) and
__RUNURL__ (the failed CI run) before posting. Keep both literal.
-->
Triage the failed CI run at __RUNURL__.
Read the logs and root-cause each distinct failure. DEDUPE against open issues — if a failure matches an existing issue, comment "recurred" there instead of filing a duplicate.
For each genuine, self-contained defect, file a scoped issue (`gh issue create --title "<scoped fix>" --body "<root cause, where, acceptance criteria>"`) so the planner/builder can pick it up and the next CI run verifies it.
IGNORE transient flakes — network blips, provider outages, timeouts with no code cause. Anything needing a breaking or architectural change: label it `needs-human` and describe it, rather than auto-filing it as a routine fix.
Close this issue (`gh issue close __ISSUE__`) when triage is done.
-1
View File
@@ -13,7 +13,6 @@ import (
_ "go-micro.dev/v6/cmd/micro/cli/deploy"
_ "go-micro.dev/v6/cmd/micro/flow"
_ "go-micro.dev/v6/cmd/micro/inspect"
_ "go-micro.dev/v6/cmd/micro/loop"
_ "go-micro.dev/v6/cmd/micro/mcp"
_ "go-micro.dev/v6/cmd/micro/resource"
_ "go-micro.dev/v6/cmd/micro/run"
+31 -85
View File
@@ -1,34 +1,14 @@
# Go Micro Examples
This directory contains runnable examples that take you through the Go Micro
lifecycle: start with a service, expose it as agent-usable capability, then
coordinate work with workflows.
This directory contains runnable examples demonstrating various go-micro features and patterns.
## Quick Start
Each example can be run with `go run .` from its directory unless its README says
otherwise. If you are new to the repo, follow the first-agent path below instead
of reading the directories alphabetically.
Each example can be run with `go run .` from its directory.
## Recommended first-agent path
## Examples
| Step | Start here | What you learn | Next step |
|------|------------|----------------|-----------|
| 1. First service | [`hello-world`](./hello-world/) | Create and register a basic RPC service, add a handler, call it with a client, and expose health checks. | Move to [`agent-demo`](./agent-demo/) to see services used by an agent. |
| 2. First agent | [`first-agent`](./first-agent/) | Run the smallest service-backed agent with a deterministic mock model and no provider key. | Compare with [`agent-demo`](./agent-demo/) or the maintained 0-to-hero path in [`support`](./support/). |
| 3. First workflow | [`support`](./support/) | Follow typed services into an agent chat loop, an event-driven `intake` flow, and an approval gate in one runnable reference. | Deepen the workflow model with [`flow-durable`](./flow-durable/). |
For the shortest AI-tooling bridge, the MCP path is
[`mcp/hello`](./mcp/hello/) → [`mcp/crud`](./mcp/crud/) →
[`mcp/workflow`](./mcp/workflow/). For debugging and production hardening, keep
[`agent-wrap-tool`](./agent-wrap-tool/), [`agent-durable`](./agent-durable/), and
[`deployment`](./deployment/) nearby.
## Lifecycle map
### 1. Services — learn the runtime foundation
#### [hello-world](./hello-world/)
### [hello-world](./hello-world/)
Basic RPC service demonstrating core concepts:
- Service creation and registration
- Handler implementation
@@ -41,7 +21,7 @@ cd hello-world
go run .
```
#### [web-service](./web-service/)
### [web-service](./web-service/)
HTTP web service with service discovery:
- HTTP handlers
- Service registration
@@ -54,7 +34,7 @@ cd web-service
go run .
```
#### [multi-service](./multi-service/)
### [multi-service](./multi-service/)
Multiple services in a single binary — the modular monolith pattern:
- Isolated server, client, store, and cache per service
- Shared registry and broker for inter-service communication
@@ -67,79 +47,44 @@ cd multi-service
go run .
```
#### [deployment](./deployment/)
### [deployment](./deployment/)
Docker Compose deployment with MCP gateway, Consul registry, and Jaeger tracing:
- Production-like architecture in one `docker-compose up`
- Standalone MCP gateway connected to service registry
- Distributed tracing with OpenTelemetry + Jaeger
### 2. Agents — turn services into tool-using teammates
#### [first-agent](./first-agent/)
Smallest first agent: one notes service plus one scoped agent, backed by a deterministic mock model so `go run ./examples/first-agent` works without provider secrets.
#### [agent-demo](./agent-demo/)
A multi-service project management app with Projects,
Tasks, and Team services, seed data, and agent playground integration.
#### [agent-plan-delegate](./agent-plan-delegate/)
The two built-in agent capabilities in a small multi-agent system:
- **plan** — an agent records an ordered plan in its store-backed memory before doing multi-step work
- **delegate** — an agent hands a subtask to another agent (over RPC if it's registered, else to an ephemeral sub-agent)
#### [agent-wrap-tool](./agent-wrap-tool/)
Middleware around an agent's tool execution with `AgentWrapTool`, the tool-side analogue of client/server wrappers:
- **observe** — time every tool call and record per-tool metrics, correlated by call ID
- **retry** — re-run a call whose result is an error, recovering from a transient failure before the model sees it
#### [agent-durable](./agent-durable/)
Durable agent runs that can be checkpointed and resumed, useful once your first
agent needs predictable recovery behavior.
#### [agent-human-input](./agent-human-input/)
Human-in-the-loop agent interaction for decisions that need an explicit person
before the run can continue.
#### [agent-ollama](./agent-ollama/)
Local-model agent wiring for developers experimenting with Ollama-backed model
calls.
### 3. Workflows — coordinate longer-running work
#### [support](./support/)
A maintained 0-to-hero reference path in one runnable file:
- **scaffold** typed `customers`, `tickets`, and `notify` services
- **run/chat** with a support agent that uses those services as tools
- **inspect** the event-driven `intake` flow and approval gate
- **CI** keeps the deterministic mock-model journey runnable with `go test ./examples/support`
#### [flow-durable](./flow-durable/)
A workflow as ordered, checkpointed steps that survives a crash and resumes where it stopped:
- **steps** — a flow is a task with stages (`reserve → charge → confirm`), not just one LLM turn
- **Checkpoint** — each step is persisted; on `Resume`, completed steps are not re-run (no duplicate side effects)
#### [flow-loop](./flow-loop/)
A looping flow example for repeated workflow steps.
### 4. MCP and agent integration examples
### MCP Examples
See the [mcp/](./mcp/) directory for AI agent integration examples:
- **[hello](./mcp/hello/)** - Minimal MCP service (start here)
- **[crud](./mcp/crud/)** - CRUD contact book with full agent documentation
- **[workflow](./mcp/workflow/)** - Cross-service orchestration via AI agents
- **[documented](./mcp/documented/)** - All MCP features with auth scopes
- **[platform](./mcp/platform/)** - Platform-oriented MCP service example
## Other examples
### [agent-demo](./agent-demo/)
Multi-service project management app (Projects, Tasks, Team) with seed data and agent playground integration.
### [auth](./auth/)
Authentication and authorization example.
### [agent-plan-delegate](./agent-plan-delegate/)
The two built-in agent capabilities in a small multi-agent system:
- **plan** — an agent records an ordered plan in its store-backed memory before doing multi-step work
- **delegate** — an agent hands a subtask to another agent (over RPC if it's registered, else to an ephemeral sub-agent)
### [graceful-stop](./graceful-stop/)
Graceful shutdown behavior for long-running services.
### [agent-wrap-tool](./agent-wrap-tool/)
Middleware around an agent's tool execution with `AgentWrapTool`, the tool-side analogue of client/server wrappers:
- **observe** — time every tool call and record per-tool metrics, correlated by call ID
- **retry** — re-run a call whose result is an error, recovering from a transient failure before the model sees it
### [grpc-interop](./grpc-interop/)
gRPC interoperability example.
### [flow-durable](./flow-durable/)
A workflow as ordered, checkpointed steps that survives a crash and resumes where it stopped:
- **steps** — a flow is a task with stages (`reserve → charge → confirm`), not just one LLM turn
- **Checkpoint** — each step is persisted; on `Resume`, completed steps are not re-run (no duplicate side effects)
### [support](./support/)
A maintained 0-to-hero reference path in one runnable file:
- **scaffold** typed `customers`, `tickets`, and `notify` services
- **run/chat** with a support agent that uses those services as tools
- **inspect** the event-driven `intake` flow and approval gate
- **CI** keeps the deterministic mock-model journey runnable with `go test ./examples/support`
## Coming Soon
@@ -161,5 +106,6 @@ To add a new example:
1. Create a new directory
2. Add a descriptive README.md
3. Include working code with comments
4. Add to this index under the lifecycle stage it supports
4. Add to this index
5. Ensure it runs with `go run .`
-246
View File
@@ -1,246 +0,0 @@
// Agent Ollama — a self-contained agent powered by Ollama Cloud.
//
// This example demonstrates the full harness loop — service tools, custom
// tools, agent memory, guardrails, and streaming — using the Ollama
// provider with gpt-oss:120b on Ollama Cloud.
//
// It creates a "knowledge" service with two endpoints (Add, Search) that
// the agent discovers as tools, plus a custom "current_time" tool. The
// agent answers natural-language questions by calling those tools.
//
// Run (Ollama Cloud — default):
//
// OLLAMA_API_KEY=your-key go run main.go
//
// Run (local Ollama):
//
// OLLAMA_BASE_URL=http://localhost:11434 \
// OLLAMA_MODEL=llama3.2 \
// go run main.go
package main
import (
"context"
"encoding/json"
"fmt"
"os"
"strings"
"sync"
"time"
"go-micro.dev/v6"
"go-micro.dev/v6/agent"
)
// ---------------------------------------------------------------------------
// knowledge service — a tiny in-memory knowledge base
// ---------------------------------------------------------------------------
type KnowledgeEntry struct {
ID string `json:"id" description:"Unique entry identifier"`
Topic string `json:"topic" description:"Topic or category"`
Content string `json:"content" description:"The knowledge content"`
}
type AddKnowledgeRequest struct {
Topic string `json:"topic" description:"Topic or category (required)"`
Content string `json:"content" description:"The knowledge content (required)"`
}
type AddKnowledgeResponse struct {
Entry *KnowledgeEntry `json:"entry" description:"The added entry"`
}
type SearchKnowledgeRequest struct {
Topic string `json:"topic,omitempty" description:"Filter by topic (optional)"`
Keyword string `json:"keyword,omitempty" description:"Search keyword in content (optional)"`
}
type SearchKnowledgeResponse struct {
Entries []*KnowledgeEntry `json:"entries" description:"Matching entries"`
}
type KnowledgeService struct {
mu sync.RWMutex
entries []*KnowledgeEntry
nextID int
}
// Add stores a new knowledge entry.
//
// @example {"topic": "go", "content": "Go interfaces are implicit."}
func (s *KnowledgeService) Add(ctx context.Context, req *AddKnowledgeRequest, rsp *AddKnowledgeResponse) error {
s.mu.Lock()
defer s.mu.Unlock()
s.nextID++
e := &KnowledgeEntry{
ID: fmt.Sprintf("kb-%d", s.nextID),
Topic: req.Topic,
Content: req.Content,
}
s.entries = append(s.entries, e)
rsp.Entry = e
return nil
}
// Search finds knowledge entries by topic or keyword.
//
// @example {"topic": "go"}
// @example {"keyword": "interface"}
func (s *KnowledgeService) Search(ctx context.Context, req *SearchKnowledgeRequest, rsp *SearchKnowledgeResponse) error {
s.mu.RLock()
defer s.mu.RUnlock()
for _, e := range s.entries {
if req.Topic != "" && !strings.EqualFold(e.Topic, req.Topic) {
continue
}
if req.Keyword != "" && !strings.Contains(strings.ToLower(e.Content), strings.ToLower(req.Keyword)) {
continue
}
rsp.Entries = append(rsp.Entries, e)
}
return nil
}
// ---------------------------------------------------------------------------
// main
// ---------------------------------------------------------------------------
func main() {
// Ollama Cloud is the default. Override with env vars for local Ollama.
baseURL := os.Getenv("OLLAMA_BASE_URL")
if baseURL == "" {
baseURL = "https://ollama.com/v1"
}
model := os.Getenv("OLLAMA_MODEL")
if model == "" {
model = "gpt-oss:120b"
}
apiKey := os.Getenv("OLLAMA_API_KEY")
fmt.Println("╔══════════════════════════════════════════╗")
fmt.Println("║ Ollama-Powered Go Micro Agent ║")
fmt.Println("╚══════════════════════════════════════════╝")
fmt.Println()
fmt.Printf(" Ollama URL: %s\n", baseURL)
fmt.Printf(" Model: %s\n", model)
if apiKey != "" {
fmt.Printf(" API Key: (set)\n")
} else {
fmt.Printf(" API Key: (none — set OLLAMA_API_KEY)\n")
}
fmt.Println()
// 1. Start the knowledge service. Its handlers become agent tools.
svc := micro.NewService("knowledge")
svc.Handle(new(KnowledgeService))
go svc.Run()
// Give the service a moment to register.
time.Sleep(2 * time.Second)
// 2. Create the agent. It discovers the knowledge service endpoints
// as tools automatically, plus gets a custom "current_time" tool.
ag := micro.NewAgent("ollama-assistant",
micro.AgentServices("knowledge"),
micro.AgentPrompt(
"You are a helpful knowledge assistant. You can search and add to "+
"a knowledge base using the knowledge service tools. "+
"When asked about the current time, use the current_time tool. "+
"Be concise and factual.",
),
micro.AgentProvider("ollama"),
micro.AgentModel(model),
micro.AgentAPIKey(apiKey),
micro.AgentBaseURL(baseURL),
micro.AgentMaxSteps(10),
micro.AgentLoopLimit(3),
// Custom tool — any function, not tied to a service.
agent.WithTool(
"current_time",
"Get the current date and time in a human-readable format",
map[string]any{
"timezone": map[string]any{
"type": "string",
"description": "Optional timezone (defaults to local)",
},
},
func(ctx context.Context, input map[string]any) (string, error) {
tz, _ := input["timezone"].(string)
if tz == "" {
return time.Now().Format("2006-01-02 15:04:05 MST"), nil
}
loc, err := time.LoadLocation(tz)
if err != nil {
return "", fmt.Errorf("unknown timezone: %s", tz)
}
return time.Now().In(loc).Format("2006-01-02 15:04:05 MST"), nil
},
),
)
// 3. Seed initial knowledge via the agent's first question.
questions := []string{
"What time is it now?",
"Add a new knowledge entry: topic 'go', content 'Go interfaces are implicit — a type implements an interface by having the required methods.'",
"Add another entry: topic 'go', content 'Go is a statically typed, compiled language designed at Google.'",
"Add another entry: topic 'ai', content 'Large language models generate text by predicting the next token in a sequence.'",
"Search the knowledge base for entries about Go.",
"Search for everything in the knowledge base.",
}
fmt.Println("─── Agent Demo ───")
fmt.Println()
for i, q := range questions {
fmt.Printf("Q%d: %s\n", i+1, q)
fmt.Print("A: ")
resp, err := ag.Ask(context.Background(), q)
if err != nil {
fmt.Printf("error: %v\n", err)
fmt.Println()
continue
}
// Show tool calls the agent made.
if len(resp.ToolCalls) > 0 {
for _, tc := range resp.ToolCalls {
args, _ := json.Marshal(tc.Input)
fmt.Printf(" [tool] %s(%s)\n", tc.Name, string(args))
}
}
fmt.Println(resp.Reply)
if resp.Reply == "" && len(resp.ToolCalls) == 0 {
fmt.Println("(no response)")
}
fmt.Println()
}
// 4. Streaming demonstration.
fmt.Println("─── Streaming Demo ───")
fmt.Println()
streamQ := "Explain what Go Micro is in two sentences."
fmt.Printf("Q: %s\n", streamQ)
fmt.Print("A: ")
stream, err := ag.Stream(context.Background(), streamQ)
if err != nil {
fmt.Printf("stream error: %v\n", err)
} else {
for {
chunk, err := stream.Recv()
if err != nil {
break
}
if chunk.Reply != "" {
fmt.Print(chunk.Reply)
}
}
fmt.Println()
}
fmt.Println()
fmt.Println("Done.")
}
-38
View File
@@ -1,38 +0,0 @@
# First Agent
This is the smallest runnable service-backed agent in the repository. It sits
between `micro new helloworld` and the full [`examples/support`](../support/)
0→hero reference.
It runs with a deterministic mock model, so you do not need `ANTHROPIC_API_KEY`,
`OPENAI_API_KEY`, or any other provider secret.
```bash
go run ./examples/first-agent
```
Expected transcript:
```text
First agent (provider: mock, no API key)
> Summarize my next steps
[notes] listed starter notes
assistant: Your first agent read the notes service and found three steps: install the CLI, run a service, then chat with an agent.
✓ service-backed agent completed without provider secrets
```
## What it demonstrates
- `notes` is a normal Go Micro service with one RPC method.
- `assistant` is an agent scoped to that service via `agent.Services("notes")`.
- The mock model requests the service tool through the normal agent tool handler.
- The final answer proves the service → agent path without a live model key.
CI keeps this path runnable with:
```bash
go test ./examples/first-agent
```
After this, continue to [`examples/support`](../support/) for the full services →
agents → workflows lifecycle with a flow trigger and an approval gate.
-146
View File
@@ -1,146 +0,0 @@
// First Agent — the smallest runnable service-backed agent.
//
// Run:
//
// go run ./examples/first-agent
//
// It uses a deterministic mock model, so it needs no provider API key. The
// point is to show the first agent shape: a service exposes a tool, an agent
// discovers that service, the model asks to call the tool, and the agent returns
// a final answer.
package main
import (
"context"
"fmt"
"os"
"strings"
"time"
"go-micro.dev/v6/agent"
"go-micro.dev/v6/ai"
"go-micro.dev/v6/client"
"go-micro.dev/v6/registry"
"go-micro.dev/v6/selector"
"go-micro.dev/v6/service"
"go-micro.dev/v6/store"
)
type ListNotesRequest struct{}
type ListNotesResponse struct {
Notes []string `json:"notes" description:"Notes the assistant can summarize"`
}
type NotesService struct{}
// List returns the starter notes the first agent can read.
// @example {}
func (s *NotesService) List(ctx context.Context, req *ListNotesRequest, rsp *ListNotesResponse) error {
rsp.Notes = []string{"Install the micro CLI", "Run a service", "Chat with an agent"}
fmt.Println(" [notes] listed starter notes")
return nil
}
type mockModel struct{ opts ai.Options }
func newMock(opts ...ai.Option) ai.Model {
m := &mockModel{}
_ = m.Init(opts...)
return m
}
func (m *mockModel) Init(opts ...ai.Option) error {
for _, o := range opts {
o(&m.opts)
}
return nil
}
func (m *mockModel) Options() ai.Options { return m.opts }
func (m *mockModel) String() string { return "first-agent-mock" }
func (m *mockModel) Stream(context.Context, *ai.Request, ...ai.GenerateOption) (ai.Stream, error) {
return nil, fmt.Errorf("stream not supported by first-agent mock")
}
func (m *mockModel) Generate(ctx context.Context, req *ai.Request, _ ...ai.GenerateOption) (*ai.Response, error) {
for _, tool := range req.Tools {
if strings.Contains(tool.Name, "List") && m.opts.ToolHandler != nil {
m.opts.ToolHandler(ctx, ai.ToolCall{ID: "list-notes", Name: tool.Name, Input: map[string]any{}})
break
}
}
return &ai.Response{Answer: "Your first agent read the notes service and found three steps: install the CLI, run a service, then chat with an agent."}, nil
}
func waitFor(reg registry.Registry, names ...string) error {
deadline := time.Now().Add(5 * time.Second)
for _, name := range names {
for {
if svcs, err := reg.GetService(name); err == nil && len(svcs) > 0 && len(svcs[0].Nodes) > 0 {
break
}
if time.Now().After(deadline) {
return fmt.Errorf("timed out waiting for %s", name)
}
time.Sleep(20 * time.Millisecond)
}
}
return nil
}
func runFirstAgent() error {
ai.Register("first-agent-mock", newMock)
reg := registry.NewMemoryRegistry()
cl := client.NewClient(client.Registry(reg), client.Selector(selector.NewSelector(selector.Registry(reg))))
notes := service.New(service.Name("notes"), service.Address("127.0.0.1:0"), service.Registry(reg), service.Client(cl), service.HandleSignal(false))
if err := notes.Handle(new(NotesService)); err != nil {
return fmt.Errorf("handle notes: %w", err)
}
svcErr := make(chan error, 1)
go func() { svcErr <- notes.Run() }()
defer notes.Server().Stop()
assistant := agent.New(
agent.Name("assistant"),
agent.Address("127.0.0.1:0"),
agent.Services("notes"),
agent.Prompt("You are a friendly first agent. Use the notes service before answering."),
agent.Provider("first-agent-mock"),
agent.WithRegistry(reg),
agent.WithClient(cl),
agent.WithStore(store.NewMemoryStore()),
)
agentErr := make(chan error, 1)
go func() { agentErr <- assistant.Run() }()
defer assistant.Stop()
if err := waitFor(reg, "notes", "assistant"); err != nil {
select {
case runErr := <-svcErr:
return fmt.Errorf("run notes: %w", runErr)
case runErr := <-agentErr:
return fmt.Errorf("run assistant: %w", runErr)
default:
}
return err
}
fmt.Println("First agent (provider: mock, no API key)")
fmt.Println("> Summarize my next steps")
resp, err := assistant.Ask(context.Background(), "Summarize my next steps")
if err != nil {
return fmt.Errorf("ask assistant: %w", err)
}
fmt.Println("assistant:", resp.Reply)
fmt.Println("✓ service-backed agent completed without provider secrets")
return nil
}
func main() {
if err := runFirstAgent(); err != nil {
fmt.Println(err)
os.Exit(1)
}
}
-9
View File
@@ -1,9 +0,0 @@
package main
import "testing"
func TestRunFirstAgent(t *testing.T) {
if err := runFirstAgent(); err != nil {
t.Fatalf("first-agent example failed: %v", err)
}
}
+18 -22
View File
@@ -201,13 +201,12 @@ type Part struct {
// Message is a turn in an A2A conversation.
type Message struct {
Role string `json:"role"` // "user" | "agent"
Parts []Part `json:"parts"`
MessageID string `json:"messageId,omitempty"`
TaskID string `json:"taskId,omitempty"`
ContextID string `json:"contextId,omitempty"`
Kind string `json:"kind"` // "message"
AP2Mandates []AP2SignedMandate `json:"ap2Mandates,omitempty"`
Role string `json:"role"` // "user" | "agent"
Parts []Part `json:"parts"`
MessageID string `json:"messageId,omitempty"`
TaskID string `json:"taskId,omitempty"`
ContextID string `json:"contextId,omitempty"`
Kind string `json:"kind"` // "message"
}
// TaskStatus is a task's lifecycle state.
@@ -224,14 +223,12 @@ type Artifact struct {
// Task is the unit of work returned by message/send and tasks/get.
type Task struct {
ID string `json:"id"`
ContextID string `json:"contextId"`
Status TaskStatus `json:"status"`
Artifacts []Artifact `json:"artifacts,omitempty"`
History []Message `json:"history,omitempty"`
Kind string `json:"kind"` // "task"
AP2Mandates []AP2SignedMandate `json:"ap2Mandates,omitempty"`
AP2Verifications []AP2Verification `json:"ap2Verifications,omitempty"`
ID string `json:"id"`
ContextID string `json:"contextId"`
Status TaskStatus `json:"status"`
Artifacts []Artifact `json:"artifacts,omitempty"`
History []Message `json:"history,omitempty"`
Kind string `json:"kind"` // "task"
}
// PushNotificationConfig tells the gateway where to POST task updates for a
@@ -851,13 +848,12 @@ func taskFromReplyWithIDsAndHistory(input Message, reply, state, taskID, context
input.Kind = "message"
}
task := &Task{
ID: taskID,
ContextID: contextID,
Kind: "task",
History: append(append([]Message{}, history...), input),
Status: TaskStatus{State: state, Timestamp: time.Now().UTC().Format(time.RFC3339)},
Artifacts: []Artifact{textArtifact(reply)},
AP2Mandates: append([]AP2SignedMandate{}, input.AP2Mandates...),
ID: taskID,
ContextID: contextID,
Kind: "task",
History: append(append([]Message{}, history...), input),
Status: TaskStatus{State: state, Timestamp: time.Now().UTC().Format(time.RFC3339)},
Artifacts: []Artifact{textArtifact(reply)},
}
task.History = append(task.History, Message{
Role: "agent",
-150
View File
@@ -1,150 +0,0 @@
package a2a
import (
"crypto/ed25519"
"crypto/rand"
"crypto/sha256"
"encoding/base64"
"encoding/json"
"errors"
"fmt"
"time"
)
// AP2MandateKind identifies the AP2 mandate stage represented by a credential.
type AP2MandateKind string
const (
AP2CheckoutMandate AP2MandateKind = "checkout"
AP2PaymentMandate AP2MandateKind = "payment"
)
// AP2RailRef names the settlement rail authorized by an AP2 payment mandate.
type AP2RailRef struct {
Type string `json:"type"`
Reference string `json:"reference"`
}
// AP2Mandate is a small verifiable AP2 credential. It is deliberately rail-neutral:
// x402 is represented as one possible rail reference under a payment mandate.
type AP2Mandate struct {
ID string `json:"id"`
Kind AP2MandateKind `json:"kind"`
Subject string `json:"subject,omitempty"`
Merchant string `json:"merchant,omitempty"`
Amount string `json:"amount,omitempty"`
Currency string `json:"currency,omitempty"`
Description string `json:"description,omitempty"`
TaskID string `json:"taskId,omitempty"`
ContextID string `json:"contextId,omitempty"`
Rail *AP2RailRef `json:"rail,omitempty"`
IssuedAt time.Time `json:"issuedAt"`
}
// AP2SignedMandate is an AP2 mandate plus an Ed25519 signature over its canonical JSON.
type AP2SignedMandate struct {
Mandate AP2Mandate `json:"mandate"`
KeyID string `json:"keyId,omitempty"`
Signature string `json:"signature"`
}
// AP2Verification records mandate verification on an A2A task without mixing in
// payment-settlement state.
type AP2Verification struct {
MandateID string `json:"mandateId"`
Kind string `json:"kind"`
Verified bool `json:"verified"`
Error string `json:"error,omitempty"`
}
// NewAP2Keypair returns an Ed25519 keypair suitable for tests or local demos.
func NewAP2Keypair() (ed25519.PublicKey, ed25519.PrivateKey, error) {
return ed25519.GenerateKey(rand.Reader)
}
// SignAP2Mandate signs a mandate as a verifiable AP2 credential.
func SignAP2Mandate(m AP2Mandate, keyID string, private ed25519.PrivateKey) (AP2SignedMandate, error) {
if m.ID == "" {
return AP2SignedMandate{}, errors.New("ap2: mandate id is required")
}
if m.Kind == "" {
return AP2SignedMandate{}, errors.New("ap2: mandate kind is required")
}
if m.IssuedAt.IsZero() {
m.IssuedAt = time.Now().UTC()
}
payload, err := ap2Payload(m)
if err != nil {
return AP2SignedMandate{}, err
}
return AP2SignedMandate{Mandate: m, KeyID: keyID, Signature: base64.RawURLEncoding.EncodeToString(ed25519.Sign(private, payload))}, nil
}
// VerifyAP2Mandate verifies a signed mandate credential.
func VerifyAP2Mandate(s AP2SignedMandate, public ed25519.PublicKey) error {
sig, err := base64.RawURLEncoding.DecodeString(s.Signature)
if err != nil {
return fmt.Errorf("ap2: invalid signature encoding: %w", err)
}
payload, err := ap2Payload(s.Mandate)
if err != nil {
return err
}
if !ed25519.Verify(public, payload, sig) {
return errors.New("ap2: mandate signature verification failed")
}
return nil
}
// AP2BindMandateToMessage returns a copy of m bound to the A2A message's task/context.
func AP2BindMandateToMessage(m AP2Mandate, msg Message) AP2Mandate {
m.TaskID = msg.TaskID
m.ContextID = msg.ContextID
return m
}
// AP2AttachMandate returns a copy of msg carrying the signed AP2 mandate.
func AP2AttachMandate(msg Message, mandate AP2SignedMandate) Message {
msg.AP2Mandates = append(append([]AP2SignedMandate{}, msg.AP2Mandates...), mandate)
return msg
}
// VerifyAP2ForTask verifies signature, task binding, and optional settlement rail reference.
func VerifyAP2ForTask(s AP2SignedMandate, public ed25519.PublicKey, task Task, rail *AP2RailRef) AP2Verification {
out := AP2Verification{MandateID: s.Mandate.ID, Kind: string(s.Mandate.Kind), Verified: true}
if err := VerifyAP2Mandate(s, public); err != nil {
out.Verified = false
out.Error = err.Error()
return out
}
if s.Mandate.TaskID != "" && s.Mandate.TaskID != task.ID {
out.Verified = false
out.Error = "ap2: mandate task binding mismatch"
return out
}
if s.Mandate.ContextID != "" && s.Mandate.ContextID != task.ContextID {
out.Verified = false
out.Error = "ap2: mandate context binding mismatch"
return out
}
if s.Mandate.Kind == AP2PaymentMandate && rail != nil {
if s.Mandate.Rail == nil || *s.Mandate.Rail != *rail {
out.Verified = false
out.Error = "ap2: settlement rail reference mismatch"
return out
}
}
return out
}
// X402AP2Rail builds the x402 settlement rail reference carried under a payment mandate.
func X402AP2Rail(reference string) AP2RailRef { return AP2RailRef{Type: "x402", Reference: reference} }
func ap2Payload(m AP2Mandate) ([]byte, error) {
b, err := json.Marshal(m)
if err != nil {
return nil, fmt.Errorf("ap2: marshal mandate: %w", err)
}
sum := sha256.Sum256(b)
return sum[:], nil
}
-78
View File
@@ -1,78 +0,0 @@
package a2a
import (
"crypto/ed25519"
"strings"
"testing"
"time"
)
func testAP2Key(t *testing.T) (ed25519.PublicKey, ed25519.PrivateKey) {
t.Helper()
pub, priv, err := NewAP2Keypair()
if err != nil {
t.Fatal(err)
}
return pub, priv
}
func TestAP2CheckoutMandateSignAttachAndVerify(t *testing.T) {
pub, priv := testAP2Key(t)
msg := Message{Role: "user", Kind: "message", TaskID: "task-1", ContextID: "ctx-1", Parts: []Part{{Kind: "text", Text: "buy"}}}
mandate := AP2BindMandateToMessage(AP2Mandate{ID: "checkout-1", Kind: AP2CheckoutMandate, Subject: "alice", Merchant: "store", Amount: "10.00", Currency: "USD", Description: "demo", IssuedAt: time.Unix(1, 0).UTC()}, msg)
signed, err := SignAP2Mandate(mandate, "test-key", priv)
if err != nil {
t.Fatal(err)
}
msg = AP2AttachMandate(msg, signed)
task := taskFromReplyWithIDs(msg, "ok", stateCompleted, msg.TaskID, msg.ContextID)
if len(task.AP2Mandates) != 1 {
t.Fatalf("expected mandate carried on task, got %d", len(task.AP2Mandates))
}
got := VerifyAP2ForTask(task.AP2Mandates[0], pub, *task, nil)
if !got.Verified || got.Error != "" {
t.Fatalf("expected verified mandate, got %+v", got)
}
}
func TestAP2PaymentMandateX402RailReference(t *testing.T) {
pub, priv := testAP2Key(t)
rail := X402AP2Rail("payreq_123")
task := Task{ID: "task-2", ContextID: "ctx-2"}
signed, err := SignAP2Mandate(AP2Mandate{ID: "payment-1", Kind: AP2PaymentMandate, TaskID: task.ID, ContextID: task.ContextID, Rail: &rail, IssuedAt: time.Unix(1, 0).UTC()}, "test-key", priv)
if err != nil {
t.Fatal(err)
}
got := VerifyAP2ForTask(signed, pub, task, &rail)
if !got.Verified {
t.Fatalf("expected x402 rail to verify, got %+v", got)
}
}
func TestAP2TamperCasesFailDistinctly(t *testing.T) {
pub, priv := testAP2Key(t)
rail := X402AP2Rail("payreq_123")
task := Task{ID: "task-3", ContextID: "ctx-3"}
signed, err := SignAP2Mandate(AP2Mandate{ID: "payment-2", Kind: AP2PaymentMandate, TaskID: task.ID, ContextID: task.ContextID, Rail: &rail, IssuedAt: time.Unix(1, 0).UTC()}, "test-key", priv)
if err != nil {
t.Fatal(err)
}
tampered := signed
tampered.Mandate.Amount = "999.00"
if got := VerifyAP2ForTask(tampered, pub, task, &rail); got.Verified || !strings.Contains(got.Error, "signature") {
t.Fatalf("expected signature failure, got %+v", got)
}
wrongTask := task
wrongTask.ID = "other-task"
if got := VerifyAP2ForTask(signed, pub, wrongTask, &rail); got.Verified || !strings.Contains(got.Error, "task binding") {
t.Fatalf("expected task binding failure, got %+v", got)
}
otherRail := X402AP2Rail("payreq_other")
if got := VerifyAP2ForTask(signed, pub, task, &otherRail); got.Verified || !strings.Contains(got.Error, "rail reference") {
t.Fatalf("expected rail reference failure, got %+v", got)
}
}
+6 -7
View File
@@ -107,13 +107,12 @@ func (c *Client) SendMessage(ctx context.Context, message Message) (*Task, error
return nil, err
}
return &Task{
ID: m.TaskID,
ContextID: m.ContextID,
Kind: "task",
Status: TaskStatus{State: stateCompleted, Timestamp: time.Now().UTC().Format(time.RFC3339)},
Artifacts: []Artifact{textArtifact(textOf(m.Parts))},
History: []Message{m},
AP2Mandates: append([]AP2SignedMandate{}, m.AP2Mandates...),
ID: m.TaskID,
ContextID: m.ContextID,
Kind: "task",
Status: TaskStatus{State: stateCompleted, Timestamp: time.Now().UTC().Format(time.RFC3339)},
Artifacts: []Artifact{textArtifact(textOf(m.Parts))},
History: []Message{m},
}, nil
}
+14 -27
View File
@@ -19,28 +19,17 @@ Actions instead of subagents. Each role is a workflow:
| Role | Workflow (action name) | What it does |
|------|------------------------|--------------|
| **Planner** | `loop-planner.yml`*Loop: Planner* | Tracks live state, prioritizes the roadmap + an internal scan, and maintains the ranked queue in [`.github/loop/PRIORITIES.md`](../../.github/loop/PRIORITIES.md). Decides *what*. |
| **Planner** | `loop-architect.yml`*Loop: Architect (Planner)* | Tracks live state, prioritizes the roadmap + an internal scan, and maintains the ranked queue in [`PRIORITIES.md`](PRIORITIES.md). Decides *what*. |
| **Generator** | `loop-builder.yml`*Loop: Builder (Generator)* | Builds the top open queue item as a single-concern PR (via Codex) and self-merges on green CI. Does the work. |
| **Evaluator** | `harness.yml`*Harness (E2E)*, plus the CI gate (`tests.yaml`, `lint.yaml`) | Grades every change: the mock harness + unit/lint on each push/PR, and real-model conformance hourly. A *separate* grader — never the generator judging itself. |
| **Evaluator → feedback** | `loop-triage.yml`*Loop: Triage (Evaluator feedback)* | When a gate workflow (Lint, Run Tests, or the harness) fails on a non-PR run, root-causes, dedupes, and files scoped fix issues back into the planner's queue. The hill-climbing feedback path. |
| **Coherence** | `loop-coherence.yml`*Loop: Coherence* | Keeps README/website/docs/blog aligned with the North Star, keeps `CHANGELOG.md` living (reconciling `[Unreleased]` against merged PRs and rolling it into version headings as tags cut), and drafts the changelog blog post. |
| **Security** | `loop-security.yml`*Loop: Security* | Weekly vulnerability audit of the attack surface (MCP/A2A gateways, x402, auth, provider URLs, agent tool loop, deps via `govulncheck`). Files `security` issues; **never auto-merges** fixes and **never publishes exploit detail** in public issues (responsible disclosure); risky fixes are `needs-human`. |
| **Evaluator → feedback** | `loop-triage.yml`*Loop: Triage (Evaluator feedback)* | On harness failure, root-causes, dedupes, and files scoped fix issues back into the planner's queue. The hill-climbing feedback path. |
| **Coherence** | `loop-devrel.yml`*Loop: DevRel* | Keeps README/website/docs/blog aligned with the North Star, keeps `CHANGELOG.md` living (reconciling `[Unreleased]` against merged PRs and rolling it into version headings as tags cut), and drafts the changelog blog post. |
| **Release** | `loop-release.yml`*Loop: Release (daily patch)* | Cuts a daily patch tag when master has new commits, so the *installable* framework tracks the loop's improvements (triggers `release.yml`/goreleaser). Minor/major bumps stay with the human. |
Generation is separated from evaluation on purpose: an agent grading its own work
reliably over-rates it, so **CI and the harness — not the builder — are the gate**.
The human sets direction and owns the calls that need taste (see Guardrails).
> **Go Micro dogfoods its own tool.** These `.github/workflows/loop-*.yml` files
> are generated by [`micro loop`](../../cmd/micro/loop) (`micro loop init --roles all`).
> The workflows are the *mechanism*; each role's instruction is the editable
> *policy* in [`.github/loop/prompts/`](../../.github/loop/prompts), and the
> direction/queue live in [`.github/loop/NORTH_STAR.md`](../../.github/loop/NORTH_STAR.md)
> and [`.github/loop/PRIORITIES.md`](../../.github/loop/PRIORITIES.md). To change
> what a role does, edit its prompt — not the YAML. Re-run `micro loop init
> --roles all --force` to regenerate the workflow mechanics (it won't clobber the
> North Star, queue, or prompts).
## Autonomy
Full autonomy, **no approval gates**. Each increment: Claude Code picks the work,
@@ -158,7 +147,7 @@ The hourly loop ships increments; two periodic passes keep the *whole* heading i
the right direction. Both use the same mechanism (fresh issue → `@codex` →
output) but produce direction and coherence, not just code.
- **Coherence (DevRel) — daily** (`.github/workflows/loop-coherence.yml`, prompt `.github/loop/prompts/coherence.md`). Audits the public
- **DevRel — daily** (`.github/workflows/loop-devrel.yml`). Audits the public
surface (README, website landing + docs, blog) for coherence with the North
Star, README crispness, and blog-worthy material. It also keeps `CHANGELOG.md`
living: each run reconciles the `[Unreleased]` section against the PRs that
@@ -171,12 +160,12 @@ output) but produce direction and coherence, not just code.
the `CHANGELOG.md` upkeep* — auto-merge like any increment; brand/positioning
copy and the changelog blog post are opened as a PR (or surfaced in the report)
and left for the human to review/merge — blog voice stays with the human.
- **Planner (Architect) — continuous (hourly)** (`.github/workflows/loop-planner.yml`, prompt `.github/loop/prompts/planner.md`).
- **Architect — continuous (hourly)** (`.github/workflows/loop-architect.yml`).
The *founder lens*, running alongside the builders. Each run it **tracks live
state** (what just merged, what's in flight), **prioritizes the roadmap**
(`ROADMAP.md`, Now → Next → Later) against an internal scan (lifecycle gaps, API
coherence and seams, dev-UX friction, missing pieces, drift/realignment), and
**maintains the ranked queue** in [`.github/loop/PRIORITIES.md`](../../.github/loop/PRIORITIES.md) — re-ranking
**maintains the ranked queue** in [`PRIORITIES.md`](PRIORITIES.md) — re-ranking
to reflect reality, backing each top item with a scoped issue, and posting an
assessment. It runs at `:59`, just before the `:29` increment, so it
re-prioritizes and *then* the loop builds the new top. **Its output is the
@@ -195,16 +184,14 @@ to redirect. Codex is serial, so these passes queue behind any in-flight increme
## Failure triage (the feedback loop)
The loop also closes on its own failures. `.github/workflows/loop-triage.yml`
fires when a gate workflow — **Lint**, **Run Tests**, or the provider-conformance
**Harness (E2E)** — finishes with `conclusion: failure` on a non-PR run (so a red
lint or test on `master`, not just a harness failure, becomes a fix issue). It
dispatches Codex to **triage** the failing run: read the logs, root-cause each
distinct failure, **dedupe** against open issues (comment "recurred" rather than
filing a duplicate), and file a scoped `codex`/`enhancement` issue for each genuine,
self-contained defect — which the increment loop then builds and the next run
verifies. Genuine transient flakes (live-model latency, provider outages) are
ignored; anything needing a breaking or architectural change is escalated as
`needs-human` instead of auto-built. This is
fires when the live provider-conformance harness finishes with `conclusion:
failure` (scheduled/manual runs only), and dispatches Codex to **triage** the
failing run: read the logs, root-cause each distinct failure, **dedupe** against
open issues (comment "recurred" rather than filing a duplicate), and file a scoped
`codex`/`enhancement` issue for each genuine, self-contained defect — which the
increment loop then builds and the next harness run verifies. Transient flakes
(live-model latency, provider outages) are ignored; anything needing a breaking or
architectural change is escalated as `needs-human` instead of auto-built. This is
the hill-climbing layer: CI/harness failures become fixes with no human in the
middle, short of a decision that's genuinely the human's.
+33
View File
@@ -0,0 +1,33 @@
# Priorities
The ranked work queue for the autonomous improvement loop. The
**architecture-review** pass (the *architect*) owns this file: each run it turns
the [roadmap](../../ROADMAP.md) plus an internal scan (gaps in the
services → agents → workflows lifecycle, API coherence, drift, tech debt, test and
DX friction) into a single ordered list — highest-value first — and links each
item to a tracking issue. The hourly **continuous-improvement** pass works the
**top item whose issue is still open**. So the architect decides *what*, and the
increment loop *builds* it.
**Reading / editing.** An item is done when its linked issue closes (the increment
that builds it adds `Closes #<issue>`). Roadmap phase (Now → Next → Later) is the
primary ordering; internal findings are interleaved by value, not kept in a
separate list. The human can reorder this list — or the issues — at any time to
redirect the loop; direction always wins.
**Off-limits to the loop** (the architect proposes these as notes, never as queue
items the loop can auto-merge): brand/positioning copy, breaking public-API
changes, architectural rewrites. Those go to the human.
## Work queue (ranked)
1. **Reorder the guides nav to lead with doing before concepts** ([#3563](https://github.com/micro/go-micro/issues/3563)) — the framework is deep, but the first impression should be action: quickstart, first agent, examples, debugging, then architecture. This is small, CI-checkable wayfinding work with outsized adoption value.
2. **Add a “Debugging your agent” guide focused on the dev workflow** ([#3564](https://github.com/micro/go-micro/issues/3564)) — the inner loop is scaffold → run → chat → inspect → deploy. Document how to see tool calls, run history, provider failures, guardrail refusals, and flow handoffs before adding more depth that users cannot diagnose.
3. **Prevent duplicate tool side effects in the plan/delegate harness** ([#3559](https://github.com/micro/go-micro/issues/3559)) — correctness still matters where it protects real user trust. Plan/delegate is central to the services → agents lifecycle, and duplicate side effects undermine the “agent as dependable service” story.
4. **Expose `fallback_echo` during A2A streaming fallback conformance** ([#3560](https://github.com/micro/go-micro/issues/3560)) — keep interop conformance trustworthy without letting it dominate the adoption queue. This is scoped, testable, and protects the A2A promise developers see in the README and site.
5. **Propagate agent run cancellation and deadlines through model and tool calls** ([#3544](https://github.com/micro/go-micro/issues/3544)) — after the on-ramp items, the highest-value remaining Now-phase resilience gap is predictable failure semantics across agent runs, model calls, tool calls, plan/delegate, and flow handoffs. Tool retries and live-provider deadline tuning are in place; the lifecycle still needs cancellation/deadline propagation so work fails safely instead of becoming opaque loops.
6. **Emit OpenTelemetry spans for agent run timelines** ([#3525](https://github.com/micro/go-micro/issues/3525)) — recent work made runs inspectable, correlated trace metadata through scheduled dispatch, verified restart resume, added opt-in tool retries, hardened provider conformance, and fixed provider-emitted text tool calls. The next Next-phase step is to turn that RunInfo foundation into standard OTel spans for agent runs, model calls, tool calls, checkpoint/resume, cancellation/deadlines, and failures.
7. **Add an AP2 mandate layer over A2A and x402** ([#3552](https://github.com/micro/go-micro/issues/3552)) — this is a forward interop investment, not a Now-phase blocker: Go Micro already has A2A agents and x402 paid tools, so a small signed-mandate foundation can keep agent payments aligned with the open-protocol story without pulling the queue away from adoption, resilience, or observability. Keep it additive and opt-in while the AP2/FIDO work settles.
_Seeded by Claude Code from the roadmap + open issues; thereafter maintained by the
architecture-review pass._
+14 -71
View File
@@ -148,17 +148,13 @@ func main() {
fmt.Fprintf(os.Stderr, "content-type = %q, want text/event-stream\n", ct)
os.Exit(1)
}
summary, err := readSSESummary(res.Body)
payload, err := readSSEData(res.Body)
if err != nil {
fmt.Fprintln(os.Stderr, err)
os.Exit(1)
}
if summary.State != "completed" {
fmt.Fprintf(os.Stderr, "stream final state = %q, want completed; payload: %s\n", summary.State, summary.Payload)
os.Exit(1)
}
if !summary.HasArtifactText {
fmt.Fprintf(os.Stderr, "stream completed without artifact text: %s\n", summary.Payload)
if !strings.Contains(payload, "a2a-fallback-ok") {
fmt.Fprintf(os.Stderr, "stream payload missing marker: %s\n", payload)
os.Exit(1)
}
if !sawTool || !sawRunInfo {
@@ -168,77 +164,24 @@ func main() {
fmt.Println("\n\033[32m✓ A2A message/stream fell back to Ask and preserved tool/run metadata\033[0m")
}
type streamSummary struct {
Payload string
State string
HasArtifactText bool
}
func readSSESummary(r io.Reader) (streamSummary, error) {
func readSSEData(r io.Reader) (string, error) {
scanner := bufio.NewScanner(r)
var event strings.Builder
var summary streamSummary
seen := false
flush := func() error {
data := strings.TrimSpace(event.String())
event.Reset()
if data == "" {
return nil
}
var envelope struct {
Result struct {
Status struct {
State string `json:"state"`
} `json:"status"`
Artifacts []struct {
Parts []struct {
Text string `json:"text"`
} `json:"parts"`
} `json:"artifacts"`
} `json:"result"`
}
if err := json.Unmarshal([]byte(data), &envelope); err != nil {
return fmt.Errorf("SSE data event is not JSON: %s", data)
}
seen = true
summary.Payload += data + "\n"
if envelope.Result.Status.State != "" {
summary.State = envelope.Result.Status.State
}
for _, artifact := range envelope.Result.Artifacts {
for _, part := range artifact.Parts {
if strings.TrimSpace(part.Text) != "" {
summary.HasArtifactText = true
}
}
}
return nil
}
var payload strings.Builder
for scanner.Scan() {
line := scanner.Text()
if strings.TrimSpace(line) == "" {
if err := flush(); err != nil {
return streamSummary{}, err
}
continue
if data, ok := strings.CutPrefix(line, "data: "); ok {
payload.WriteString(data)
payload.WriteByte('\n')
}
data, ok := strings.CutPrefix(line, "data:")
if !ok {
continue
}
if event.Len() > 0 {
event.WriteByte('\n')
}
event.WriteString(strings.TrimSpace(data))
}
if err := scanner.Err(); err != nil {
return streamSummary{}, err
return "", err
}
if err := flush(); err != nil {
return streamSummary{}, err
if payload.Len() == 0 {
return "", errors.New("no SSE data received")
}
if !seen {
return streamSummary{}, errors.New("no SSE data received")
if !json.Valid([]byte(strings.TrimSpace(payload.String()))) {
return "", fmt.Errorf("SSE data is not JSON: %s", payload.String())
}
return summary, nil
return payload.String(), nil
}
@@ -1,30 +0,0 @@
package main
import (
"strings"
"testing"
)
func TestReadSSESummaryUsesCompletedTaskInvariants(t *testing.T) {
summary, err := readSSESummary(strings.NewReader("data: {\"jsonrpc\":\"2.0\",\"result\":{\"status\":{\"state\":\"working\"}}}\n\n" +
"data: {\"jsonrpc\":\"2.0\",\"result\":{\"status\":{\"state\":\"completed\"},\"artifacts\":[{\"parts\":[{\"kind\":\"text\",\"text\":\"provider-specific answer\"}]}]}}\n\n"))
if err != nil {
t.Fatalf("readSSESummary() error = %v", err)
}
if summary.State != "completed" {
t.Fatalf("State = %q, want completed", summary.State)
}
if !summary.HasArtifactText {
t.Fatal("HasArtifactText = false, want true")
}
if strings.Contains(summary.Payload, "a2a-fallback-ok") {
t.Fatalf("test fixture should not rely on marker text: %s", summary.Payload)
}
}
func TestReadSSESummaryRejectsNonJSONData(t *testing.T) {
_, err := readSSESummary(strings.NewReader("data: not-json\n\n"))
if err == nil {
t.Fatal("readSSESummary() error = nil, want non-JSON error")
}
}
-61
View File
@@ -1,61 +0,0 @@
#!/usr/bin/env bash
# Smoke-test the documented install.sh path without network access.
# It builds the local CLI, packages it like a release archive, installs it into a
# temporary bin directory through internal/scripts/install.sh, then checks the
# first-run command boundaries shown in the getting-started docs.
set -euo pipefail
ROOT=$(cd "$(dirname "${BASH_SOURCE[0]}")/../../.." && pwd)
TMP_DIR=$(mktemp -d)
trap 'rm -rf "$TMP_DIR"' EXIT
ARCHIVE_DIR="$TMP_DIR/archive"
INSTALL_DIR="$TMP_DIR/install"
ARCHIVE="$TMP_DIR/micro-local.tar.gz"
mkdir -p "$ARCHIVE_DIR" "$INSTALL_DIR"
CGO_ENABLED=0 go build -o "$ARCHIVE_DIR/micro" ./cmd/micro
chmod +x "$ARCHIVE_DIR/micro"
tar -C "$ARCHIVE_DIR" -czf "$ARCHIVE" micro
MICRO_INSTALL_DIR="$INSTALL_DIR" \
MICRO_INSTALL_ARCHIVE="$ARCHIVE" \
MICRO_VERSION="local-smoke" \
PATH="$INSTALL_DIR:$PATH" \
"$ROOT/internal/scripts/install.sh" > "$TMP_DIR/install.out"
MICRO="$INSTALL_DIR/micro"
if [[ ! -x "$MICRO" ]]; then
echo "installed micro binary not found at $MICRO" >&2
cat "$TMP_DIR/install.out" >&2
exit 1
fi
require_output() {
local description=$1
local expected=$2
shift 2
local output
if ! output=$("$MICRO" "$@" 2>&1); then
echo "micro $* failed while checking $description" >&2
echo "$output" >&2
exit 1
fi
if [[ "$output" != *"$expected"* ]]; then
echo "micro $* missing expected text '$expected' for $description" >&2
echo "$output" >&2
exit 1
fi
}
require_output "version" "micro version" --version
require_output "root help" "COMMANDS" --help
require_output "service scaffold" "micro new" new --help
require_output "first-agent preflight" "preflight" agent preflight --help
require_output "local runtime" "micro run" run --help
require_output "agent chat" "micro chat" chat --help
require_output "agent inspection" "micro inspect agent" inspect agent --help
require_output "flow inspection" "micro inspect flow" inspect flow --help
echo "✓ install smoke path verified"
+22 -203
View File
@@ -54,64 +54,24 @@ type ListResponse struct {
}
type TaskService struct {
mu sync.Mutex
tasks []*Task
byTitle map[string]*Task
nextID int
mu sync.Mutex
tasks []*Task
nextID int
}
// Add creates a new task with the given title. Replayed live-model tool calls
// are idempotent by launch task title so the conformance harness proves exactly
// one durable side effect per intended task even if a provider resends a call.
// Add creates a new task with the given title.
// @example {"title": "Design"}
func (s *TaskService) Add(ctx context.Context, req *AddRequest, rsp *AddResponse) error {
s.mu.Lock()
defer s.mu.Unlock()
if s.byTitle == nil {
s.byTitle = map[string]*Task{}
}
key := launchTaskKey(req.Title)
if t := s.byTitle[key]; t != nil {
rsp.Task = t
fmt.Printf(" \033[32m[task]\033[0m reused %s %q\n", t.ID, t.Title)
return nil
}
s.nextID++
t := &Task{ID: fmt.Sprintf("task-%d", s.nextID), Title: canonicalLaunchTitle(req.Title)}
t := &Task{ID: fmt.Sprintf("task-%d", s.nextID), Title: req.Title}
s.tasks = append(s.tasks, t)
s.byTitle[key] = t
rsp.Task = t
fmt.Printf(" \033[32m[task]\033[0m created %s %q\n", t.ID, t.Title)
return nil
}
func launchTaskKey(title string) string {
s := strings.ToLower(strings.TrimSpace(title))
switch {
case strings.Contains(s, "design"):
return "design"
case strings.Contains(s, "build"):
return "build"
case strings.Contains(s, "ship"):
return "ship"
default:
return s
}
}
func canonicalLaunchTitle(title string) string {
switch launchTaskKey(title) {
case "design":
return "Design"
case "build":
return "Build"
case "ship":
return "Ship"
default:
return strings.TrimSpace(title)
}
}
// List returns all tasks.
// @example {}
func (s *TaskService) List(ctx context.Context, req *ListRequest, rsp *ListResponse) error {
@@ -127,12 +87,6 @@ func (s *TaskService) count() int {
return len(s.tasks)
}
const delegatedNotifyTask = "Use the notify Send tool exactly once to tell owner@acme.com: The launch plan is ready. Do not answer until the notify tool call has succeeded."
const commsPrompt = "You handle outbound notifications. When asked to notify someone, you must call the notify Send tool exactly once before replying. Never claim a notification was sent unless the notify tool returned success."
const delegatedNotifySettleTimeout = 10 * time.Second
type SendRequest struct {
To string `json:"to" description:"Recipient address"`
Message string `json:"message" description:"Message body"`
@@ -141,33 +95,17 @@ type SendResponse struct {
Sent bool `json:"sent"`
}
type NotifyService struct {
mu sync.Mutex
sent int
attempts int
duplicates int
bySend map[string]bool
mu sync.Mutex
sent int
}
// Send delivers a notification message to a recipient. Duplicate delivery
// attempts for the same recipient/message are treated as successful replays
// without producing another side effect.
// Send delivers a notification message to a recipient.
// @example {"to": "owner@acme.com", "message": "ready"}
func (s *NotifyService) Send(ctx context.Context, req *SendRequest, rsp *SendResponse) error {
s.mu.Lock()
if s.bySend == nil {
s.bySend = map[string]bool{}
}
key := strings.ToLower(strings.TrimSpace(req.To)) + "\x00" + strings.ToLower(strings.TrimSpace(req.Message))
s.attempts++
if !s.bySend[key] {
s.bySend[key] = true
s.sent++
fmt.Printf(" \033[35m[notify]\033[0m 📨 to=%s message=%q\n", req.To, req.Message)
} else {
s.duplicates++
fmt.Printf(" \033[35m[notify]\033[0m reused to=%s message=%q\n", req.To, req.Message)
}
s.sent++
s.mu.Unlock()
fmt.Printf(" \033[35m[notify]\033[0m 📨 to=%s message=%q\n", req.To, req.Message)
rsp.Sent = true
return nil
}
@@ -178,28 +116,13 @@ func (s *NotifyService) count() int {
return s.sent
}
func (s *NotifyService) duplicateAttempts() int {
s.mu.Lock()
defer s.mu.Unlock()
return s.duplicates
}
// ---------------------------------------------------------------------------
// mock LLM provider — the ONLY fake. It "reasons" by simple heuristics
// over the tools it's offered and the system prompt it's given, calling
// the real tool handler exactly the way a real provider would.
// ---------------------------------------------------------------------------
type mockModel struct {
opts ai.Options
// unknownDelegateOnce makes the mock emit one provider-style, unavailable
// delegate tool name before using the registered delegate tool. This mirrors
// live providers that occasionally hallucinate a provider-specific tool while
// still keeping the regression deterministic and keyless.
unknownDelegateOnce bool
emittedUnknownDelegate bool
}
type mockModel struct{ opts ai.Options }
func newMock(opts ...ai.Option) ai.Model {
m := &mockModel{}
@@ -207,12 +130,6 @@ func newMock(opts ...ai.Option) ai.Model {
return m
}
func newMockUnknownDelegate(opts ...ai.Option) ai.Model {
m := &mockModel{unknownDelegateOnce: true}
_ = m.Init(opts...)
return m
}
func (m *mockModel) Init(opts ...ai.Option) error {
for _, o := range opts {
o(&m.opts)
@@ -278,18 +195,10 @@ func (m *mockModel) Generate(ctx context.Context, req *ai.Request, _ ...ai.Gener
}
}
if del := findTool(req.Tools, "delegate"); del != "" {
if m.unknownDelegateOnce && !m.emittedUnknownDelegate {
m.emittedUnknownDelegate = true
m.call("conductor", "atlascloud_delegate", map[string]any{
"task": delegatedNotifyTask,
"to": "comms",
})
} else {
m.call("conductor", del, map[string]any{
"task": delegatedNotifyTask,
"to": "comms",
})
}
m.call("conductor", del, map[string]any{
"task": "Notify owner@acme.com that the launch plan is ready",
"to": "comms",
})
}
return &ai.Response{Answer: "Created Design, Build and Ship, and had comms notify the owner."}, nil
@@ -317,12 +226,9 @@ func providerKey(provider string) string {
func runPlanDelegate(provider string) error {
apiKey := ""
switch provider {
case "mock":
if provider == "mock" {
ai.Register("mock", newMock)
case "mock-unknown-delegate":
ai.Register("mock-unknown-delegate", newMockUnknownDelegate)
default:
} else {
apiKey = providerKey(provider)
if apiKey == "" {
fmt.Printf("no API key for provider %q — set MICRO_AI_API_KEY or the provider's key env\n", provider)
@@ -337,8 +243,6 @@ func runPlanDelegate(provider string) error {
cl := harnessutil.Client(provider, reg)
mem := store.NewMemoryStore()
liveAgentOpts := harnessutil.AgentOptions(provider)
commsCheckpoint := flow.StoreCheckpoint(mem, "agent-comms")
conductorCheckpoint := flow.StoreCheckpoint(mem, "agent-conductor")
// Real services.
taskSvc := new(TaskService)
@@ -360,10 +264,9 @@ func runPlanDelegate(provider string) error {
agent.Name("comms"),
agent.Address("127.0.0.1:0"),
agent.Services("notify"),
agent.Prompt(commsPrompt),
agent.Prompt("You handle outbound notifications. Use the notify service."),
agent.Provider(provider), agent.APIKey(apiKey),
agent.WithRegistry(reg), agent.WithClient(cl), agent.WithStore(mem),
agent.WithCheckpoint(commsCheckpoint),
}
commsOpts = append(commsOpts, liveAgentOpts...)
comms := agent.New(commsOpts...)
@@ -375,10 +278,9 @@ func runPlanDelegate(provider string) error {
agent.Name("conductor"),
agent.Address("127.0.0.1:0"),
agent.Services("task"),
agent.Prompt("You coordinate launch work. Plan first, create exactly one Design task, one Build task, and one Ship task, then delegate exactly one readiness notification to the \"comms\" agent. Do not create duplicate tasks and do not send notifications yourself."),
agent.Prompt("You coordinate launch work. Plan first, create tasks, and delegate notifications to the \"comms\" agent."),
agent.Provider(provider), agent.APIKey(apiKey),
agent.WithRegistry(reg), agent.WithClient(cl), agent.WithStore(mem),
agent.WithCheckpoint(conductorCheckpoint),
}
conductorOpts = append(conductorOpts, liveAgentOpts...)
conductor := agent.New(conductorOpts...)
@@ -412,18 +314,8 @@ func runPlanDelegate(provider string) error {
}
fmt.Print("\n\033[1m> flow:\033[0m services + agents + workflow + plan/delegate, no API key.\n\n")
ctx, cancel := context.WithCancel(context.Background())
defer cancel()
executeDone := make(chan error, 1)
go func() {
executeDone <- f.Execute(ctx, "launch readiness")
}()
if err := waitForPlanDelegateExecution(executeDone, taskSvc, notifySvc, func(ctx context.Context) error {
_, err := conductor.Ask(ctx, "The Design, Build, and Ship tasks already exist, but the owner notification is still missing. Delegate exactly one notification to the \"comms\" agent now with this exact subtask: "+delegatedNotifyTask+" Do not create more tasks and do not answer until comms has handled the notification.")
return err
}); err != nil {
return err
if err := f.Execute(context.Background(), "launch readiness"); err != nil {
return fmt.Errorf("flow execute: %w", err)
}
if rs := f.Results(); len(rs) > 0 {
@@ -444,81 +336,8 @@ func runPlanDelegate(provider string) error {
return nil
}
func waitForPlanDelegateExecution(done <-chan error, taskSvc *TaskService, notifySvc *NotifyService, recoverMissingNotify func(context.Context) error) error {
ticker := time.NewTicker(50 * time.Millisecond)
defer ticker.Stop()
for {
select {
case err := <-done:
tasks := taskSvc.count()
notify := notifySvc.count()
if err != nil {
if isClientTimeout(err) {
if tasks == 3 && notify == 1 {
fmt.Printf("\n\033[33mwarning:\033[0m flow execute returned after completed side effects: %v\n", err)
return nil
}
return classifiedPlanDelegateTimeout(tasks, notify, err)
}
return fmt.Errorf("flow execute after side effects tasks=%d notify=%d: %w", tasks, notify, err)
}
if notify != 1 {
if recoverMissingNotify == nil || tasks != 3 || notify != 0 {
return fmt.Errorf("delegation completed without required notify side effect: notify=%d, want 1", notify)
}
settled, err := waitForNotifySideEffect(notifySvc, delegatedNotifySettleTimeout)
if err != nil {
return err
}
if !settled {
fmt.Print("\n\033[33mwarning:\033[0m flow completed before delegated notify; retrying the missing comms handoff once.\n")
ctx, cancel := context.WithTimeout(context.Background(), 30*time.Second)
retryErr := recoverMissingNotify(ctx)
cancel()
if retryErr != nil {
return fmt.Errorf("delegation completed without required notify side effect and recovery failed: notify=%d, want 1: %w", notify, retryErr)
}
}
if notify = notifySvc.count(); notify != 1 {
return fmt.Errorf("delegation recovery completed without required notify side effect: notify=%d, want 1", notify)
}
}
return nil
case <-ticker.C:
if dup := notifySvc.duplicateAttempts(); dup > 0 {
return fmt.Errorf("duplicate notify attempts: got %d duplicate replay(s), want 0", dup)
}
}
}
}
func waitForNotifySideEffect(notifySvc *NotifyService, timeout time.Duration) (bool, error) {
deadline := time.Now().Add(timeout)
for {
if notifySvc.count() == 1 {
return true, nil
}
if dup := notifySvc.duplicateAttempts(); dup > 0 {
return false, fmt.Errorf("duplicate notify attempts: got %d duplicate replay(s), want 0", dup)
}
if !time.Now().Before(deadline) {
return false, nil
}
time.Sleep(50 * time.Millisecond)
}
}
func classifiedPlanDelegateTimeout(tasks, notify int, err error) error {
return fmt.Errorf("provider latency/outage during plan-delegate before required side effects completed (tasks=%d/3 notify=%d/1); retry live provider or inspect provider logs if this recurs: %w", tasks, notify, err)
}
func isClientTimeout(err error) bool {
msg := strings.ToLower(err.Error())
return strings.Contains(msg, "request timeout") || strings.Contains(msg, "code=408") || strings.Contains(msg, "code\":408")
}
func main() {
provider := flag.String("provider", "mock", "LLM provider: mock (default), mock-unknown-delegate, anthropic, openai, gemini, groq, mistral, together, atlascloud")
provider := flag.String("provider", "mock", "LLM provider: mock (default), anthropic, openai, gemini, groq, mistral, together, atlascloud")
flag.Parse()
if err := runPlanDelegate(*provider); err != nil {
+2 -217
View File
@@ -2,8 +2,6 @@ package main
import (
"context"
"errors"
"strings"
"testing"
"time"
@@ -67,7 +65,7 @@ func TestPlanDelegateEndToEnd(t *testing.T) {
agent.Name("comms"),
agent.Address("127.0.0.1:0"),
agent.Services("notify"),
agent.Prompt(commsPrompt),
agent.Prompt("You handle outbound notifications."),
agent.Provider("mock"),
agent.WithRegistry(reg),
agent.WithClient(cl),
@@ -149,7 +147,7 @@ func TestFlowDispatchesToAgentEndToEnd(t *testing.T) {
agent.Name("comms"),
agent.Address("127.0.0.1:0"),
agent.Services("notify"),
agent.Prompt(commsPrompt),
agent.Prompt("You handle outbound notifications."),
agent.Provider("mock"),
agent.WithRegistry(reg),
agent.WithClient(cl),
@@ -221,216 +219,3 @@ func TestZeroToHeroContract(t *testing.T) {
t.Fatalf("0→hero harness: %v", err)
}
}
func TestPlanDelegateRetriesAfterUnknownDelegateTool(t *testing.T) {
if testing.Short() {
t.Skip("0→hero harness boots an end-to-end system; skipped with -short")
}
if err := runPlanDelegate("mock-unknown-delegate"); err != nil {
t.Fatalf("0→hero harness with unknown delegate retry: %v", err)
}
}
func TestTaskServiceAddIsIdempotentForLaunchTitles(t *testing.T) {
svc := new(TaskService)
for _, title := range []string{"Design", "design task", "Build", "Build launch task", "Ship", "ship readiness"} {
var rsp AddResponse
if err := svc.Add(context.Background(), &AddRequest{Title: title}, &rsp); err != nil {
t.Fatalf("Add(%q): %v", title, err)
}
if rsp.Task == nil {
t.Fatalf("Add(%q) returned nil task", title)
}
}
if got := svc.count(); got != 3 {
t.Fatalf("task count = %d, want 3 after duplicate launch-title replays", got)
}
}
func TestPlanDelegateExecutionReportsDuplicateNotifyBeforeTimeout(t *testing.T) {
notifySvc := new(NotifyService)
for i := 0; i < 2; i++ {
var rsp SendResponse
if err := notifySvc.Send(context.Background(), &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp); err != nil {
t.Fatalf("Send attempt %d: %v", i+1, err)
}
}
done := make(chan error)
errCh := make(chan error, 1)
go func() { errCh <- waitForPlanDelegateExecution(done, new(TaskService), notifySvc, nil) }()
select {
case err := <-errCh:
if err == nil {
t.Fatal("waitForPlanDelegateExecution returned nil, want duplicate notify error")
}
if got := err.Error(); !strings.Contains(got, "duplicate notify attempts") {
t.Fatalf("error = %q, want duplicate notify attempts", got)
}
case <-time.After(time.Second):
t.Fatal("waitForPlanDelegateExecution did not report duplicate notify before timeout")
}
}
func TestPlanDelegateExecutionRejectsClaimedCompletionWithoutNotify(t *testing.T) {
notifySvc := new(NotifyService)
done := make(chan error, 1)
done <- nil
err := waitForPlanDelegateExecution(done, new(TaskService), notifySvc, nil)
if err == nil {
t.Fatal("waitForPlanDelegateExecution returned nil, want missing notify side-effect error")
}
if got := err.Error(); !strings.Contains(got, "without required notify side effect") {
t.Fatalf("error = %q, want missing notify side-effect error", got)
}
}
func TestPlanDelegateExecutionRecoversMissingNotifyOnce(t *testing.T) {
taskSvc := new(TaskService)
for _, title := range []string{"Design", "Build", "Ship"} {
var rsp AddResponse
if err := taskSvc.Add(context.Background(), &AddRequest{Title: title}, &rsp); err != nil {
t.Fatalf("Add(%q): %v", title, err)
}
}
notifySvc := new(NotifyService)
done := make(chan error, 1)
done <- nil
recovered := false
err := waitForPlanDelegateExecution(done, taskSvc, notifySvc, func(ctx context.Context) error {
recovered = true
var rsp SendResponse
return notifySvc.Send(ctx, &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp)
})
if err != nil {
t.Fatalf("waitForPlanDelegateExecution returned %v, want recovery success", err)
}
if !recovered {
t.Fatal("missing notify recovery was not invoked")
}
if got := notifySvc.count(); got != 1 {
t.Fatalf("notify count = %d, want 1 after recovery", got)
}
}
func TestPlanDelegateExecutionWaitsForInFlightNotifyAfterFlowCompletion(t *testing.T) {
taskSvc := new(TaskService)
for _, title := range []string{"Design", "Build", "Ship"} {
var rsp AddResponse
if err := taskSvc.Add(context.Background(), &AddRequest{Title: title}, &rsp); err != nil {
t.Fatalf("Add(%q): %v", title, err)
}
}
notifySvc := new(NotifyService)
done := make(chan error, 1)
done <- nil
go func() {
time.Sleep(100 * time.Millisecond)
var rsp SendResponse
_ = notifySvc.Send(context.Background(), &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp)
}()
recovered := false
err := waitForPlanDelegateExecution(done, taskSvc, notifySvc, func(ctx context.Context) error {
recovered = true
var rsp SendResponse
return notifySvc.Send(ctx, &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp)
})
if err != nil {
t.Fatalf("waitForPlanDelegateExecution returned %v, want in-flight notify success", err)
}
if recovered {
t.Fatal("missing notify recovery ran while delegated notify was still in flight")
}
if got := taskSvc.count(); got != 3 {
t.Fatalf("task count = %d, want 3 after in-flight notify settles", got)
}
if got := notifySvc.count(); got != 1 {
t.Fatalf("notify count = %d, want 1 after in-flight notify settles", got)
}
if got := notifySvc.duplicateAttempts(); got != 0 {
t.Fatalf("duplicate notify attempts = %d, want 0", got)
}
}
func TestPlanDelegateExecutionAcceptsClientTimeoutAfterSideEffects(t *testing.T) {
taskSvc := new(TaskService)
for _, title := range []string{"Design", "Build", "Ship"} {
var rsp AddResponse
if err := taskSvc.Add(context.Background(), &AddRequest{Title: title}, &rsp); err != nil {
t.Fatalf("Add(%q): %v", title, err)
}
}
notifySvc := new(NotifyService)
var rsp SendResponse
if err := notifySvc.Send(context.Background(), &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp); err != nil {
t.Fatalf("Send: %v", err)
}
done := make(chan error, 1)
done <- errors.New(`{"id":"go.micro.client","code":408,"detail":"<nil>","status":"Request Timeout"}`)
if err := waitForPlanDelegateExecution(done, taskSvc, notifySvc, nil); err != nil {
t.Fatalf("waitForPlanDelegateExecution returned %v, want completed side effects to satisfy client timeout", err)
}
}
func TestPlanDelegateExecutionClassifiesClientTimeoutBeforeSideEffects(t *testing.T) {
done := make(chan error, 1)
done <- errors.New(`{"id":"go.micro.client","code":408,"detail":"<nil>","status":"Request Timeout"}`)
err := waitForPlanDelegateExecution(done, new(TaskService), new(NotifyService), nil)
if err == nil {
t.Fatal("waitForPlanDelegateExecution returned nil, want timeout before side effects to fail")
}
for _, want := range []string{
"provider latency/outage during plan-delegate",
"tasks=0/3 notify=0/1",
"retry live provider or inspect provider logs",
"Request Timeout",
} {
if got := err.Error(); !strings.Contains(got, want) {
t.Fatalf("error = %q, want %q", got, want)
}
}
}
func TestPlanDelegateExecutionClassifiesPartialClientTimeout(t *testing.T) {
taskSvc := new(TaskService)
for _, title := range []string{"Design", "Build", "Ship"} {
var rsp AddResponse
if err := taskSvc.Add(context.Background(), &AddRequest{Title: title}, &rsp); err != nil {
t.Fatalf("Add(%q): %v", title, err)
}
}
done := make(chan error, 1)
done <- errors.New(`{"id":"go.micro.client","code":408,"detail":"<nil>","status":"Request Timeout"}`)
err := waitForPlanDelegateExecution(done, taskSvc, new(NotifyService), nil)
if err == nil {
t.Fatal("waitForPlanDelegateExecution returned nil, want timeout before notify to fail")
}
if got := err.Error(); !strings.Contains(got, "tasks=3/3 notify=0/1") {
t.Fatalf("error = %q, want partial side-effect counts", got)
}
}
func TestNotifyServiceSendIsIdempotentForDuplicateDelivery(t *testing.T) {
svc := new(NotifyService)
for i := 0; i < 3; i++ {
var rsp SendResponse
if err := svc.Send(context.Background(), &SendRequest{To: "owner@acme.com", Message: "The launch plan is ready"}, &rsp); err != nil {
t.Fatalf("Send attempt %d: %v", i+1, err)
}
if !rsp.Sent {
t.Fatalf("Send attempt %d reported Sent=false", i+1)
}
}
if got := svc.count(); got != 1 {
t.Fatalf("notify count = %d, want 1 after duplicate delivery replays", got)
}
}
@@ -51,7 +51,6 @@ Provider keys are read from `MICRO_AI_API_KEY` or the provider-specific variable
| OpenAI | `OPENAI_API_KEY` |
| Gemini | `GEMINI_API_KEY` |
| Groq | `GROQ_API_KEY` |
| MiniMax | `MINIMAX_API_KEY` |
| Mistral | `MISTRAL_API_KEY` |
| Together | `TOGETHER_API_KEY` |
| AtlasCloud | `ATLASCLOUD_API_KEY` |
@@ -29,7 +29,6 @@ import (
_ "go-micro.dev/v6/ai/atlascloud"
_ "go-micro.dev/v6/ai/gemini"
_ "go-micro.dev/v6/ai/groq"
_ "go-micro.dev/v6/ai/minimax"
_ "go-micro.dev/v6/ai/mistral"
_ "go-micro.dev/v6/ai/openai"
_ "go-micro.dev/v6/ai/together"
@@ -50,7 +49,6 @@ var providerEnv = map[string]string{
"openai": "OPENAI_API_KEY",
"gemini": "GEMINI_API_KEY",
"groq": "GROQ_API_KEY",
"minimax": "MINIMAX_API_KEY",
"mistral": "MISTRAL_API_KEY",
"together": "TOGETHER_API_KEY",
"atlascloud": "ATLASCLOUD_API_KEY",
@@ -38,7 +38,7 @@ func TestValidateSelectionRejectsUnsafeHarnessName(t *testing.T) {
func TestDefaultProvidersTracksLiveProviderSet(t *testing.T) {
got := defaultProviders()
for _, want := range []string{"anthropic", "openai", "gemini", "groq", "minimax", "mistral", "together", "atlascloud"} {
for _, want := range []string{"anthropic", "openai", "gemini", "groq", "mistral", "together", "atlascloud"} {
if !strings.Contains(got, want) {
t.Fatalf("defaultProviders() = %q, want %q", got, want)
}
@@ -54,7 +54,7 @@ func TestCapabilityMatrixHasRegisteredProviders(t *testing.T) {
t.Fatal("CapabilityRows returned no providers")
}
var foundOpenAI, foundMiniMax bool
var foundOpenAI bool
for _, row := range rows {
if row.Provider == "openai" {
foundOpenAI = true
@@ -62,19 +62,10 @@ func TestCapabilityMatrixHasRegisteredProviders(t *testing.T) {
t.Fatalf("openai capabilities = %#v, want model+image only", row.Capabilities)
}
}
if row.Provider == "minimax" {
foundMiniMax = true
if !row.Model || !row.Stream || row.Image || row.Video {
t.Fatalf("minimax capabilities = %#v, want model+stream only", row.Capabilities)
}
}
}
if !foundOpenAI {
t.Fatalf("CapabilityRows = %#v, want openai row", rows)
}
if !foundMiniMax {
t.Fatalf("CapabilityRows = %#v, want minimax row", rows)
}
}
func TestWriteCapabilityMarkdown(t *testing.T) {
+8 -192
View File
@@ -27,21 +27,17 @@ package main
import (
"context"
"encoding/json"
"flag"
"fmt"
"net/http/httptest"
"os"
"strings"
"sync"
"sync/atomic"
"time"
"go-micro.dev/v6/agent"
"go-micro.dev/v6/ai"
"go-micro.dev/v6/broker"
"go-micro.dev/v6/client"
codecbytes "go-micro.dev/v6/codec/bytes"
"go-micro.dev/v6/flow"
"go-micro.dev/v6/gateway/a2a"
"go-micro.dev/v6/internal/harness/harnessutil"
@@ -111,179 +107,17 @@ type SendResponse struct {
Sent bool `json:"sent"`
}
type Notify struct {
mu sync.Mutex
sent int64
seen map[string]struct{}
lastRejected *SendRequest
}
type Notify struct{ sent int64 }
// Send delivers a notification.
// @example {"to": "buyer@acme.com", "message": "Your order is confirmed"}
func (s *Notify) Send(_ context.Context, req *SendRequest, rsp *SendResponse) error {
if !isBuyerNotification(req) {
to, message := "", ""
if req != nil {
to, message = req.To, req.Message
}
s.recordRejected(to, message)
fmt.Printf(" \033[35m[notify]\033[0m 📨 ignored non-buyer notification to=%s %q\n", to, message)
rsp.Sent = false
return nil
}
s.recordRejected("", "")
keys := notificationDedupeKeys(req)
s.mu.Lock()
if s.seen == nil {
s.seen = make(map[string]struct{})
}
for _, key := range keys {
if _, ok := s.seen[key]; ok {
s.mu.Unlock()
fmt.Printf(" \033[35m[notify]\033[0m 📨 duplicate suppressed to=%s %q\n", req.To, req.Message)
rsp.Sent = true
return nil
}
}
for _, key := range keys {
s.seen[key] = struct{}{}
}
s.mu.Unlock()
atomic.AddInt64(&s.sent, 1)
fmt.Printf(" \033[35m[notify]\033[0m 📨 to=%s %q\n", req.To, req.Message)
rsp.Sent = true
return nil
}
func isBuyerNotification(req *SendRequest) bool {
if req == nil {
return false
}
return canonicalBuyerRecipient(req.To) != ""
}
func (s *Notify) recordRejected(to, message string) {
s.mu.Lock()
defer s.mu.Unlock()
if strings.TrimSpace(to) == "" && strings.TrimSpace(message) == "" {
s.lastRejected = nil
return
}
s.lastRejected = &SendRequest{To: to, Message: message}
}
func (s *Notify) rejectedSummary() string {
s.mu.Lock()
defer s.mu.Unlock()
if s.lastRejected == nil {
return "no rejected notify call observed"
}
return fmt.Sprintf("last notify args to=%q message=%q", s.lastRejected.To, s.lastRejected.Message)
}
func canonicalBuyerRecipient(to string) string {
recipient := strings.ToLower(strings.TrimSpace(to))
switch recipient {
case "buyer", "buyer@acme.com":
return "buyer@acme.com"
}
if strings.HasPrefix(recipient, "buyer-of-order-") && len(recipient) > len("buyer-of-order-") {
return "buyer@acme.com"
}
for _, field := range strings.FieldsFunc(recipient, func(r rune) bool {
switch r {
case ' ', '\t', '\n', '\r', ',', ';', ':', '/', '\\', '(', ')', '[', ']', '{', '}':
return true
default:
return false
}
}) {
switch field {
case "buyer", "buyer@acme.com":
return "buyer@acme.com"
}
}
return ""
}
func notificationDedupeKeys(req *SendRequest) []string {
recipient := canonicalBuyerRecipient(req.To)
if recipient == "" {
recipient = strings.TrimSpace(req.To)
}
keys := []string{recipient + "\x00" + req.Message}
message := strings.ToLower(req.Message)
if strings.Contains(message, "confirm") {
// Live models occasionally emit equivalent confirmation copy more than
// once while a resumed checkout is completing (for example, a concise
// "order-1 confirmed" followed by a fuller buyer-facing sentence). The
// harness has one checkout order, so treat confirmation messages to the
// same buyer as the same side effect while preserving exact-message
// idempotency for all other notifications.
keys = append(keys, recipient+"\x00confirmation")
}
return keys
}
func dispatchNotifyStep(agentName string, cl client.Client, ntf *Notify) flow.StepFunc {
return func(ctx context.Context, in flow.State) (flow.State, error) {
before := atomic.LoadInt64(&ntf.sent)
out, err := dispatchBuyerNotification(ctx, agentName, cl, in)
if err != nil {
out = in
}
return completeNotifyOnObservedSideEffect(ctx, out, ntf, before, 2*time.Second, err)
}
}
func dispatchBuyerNotification(ctx context.Context, agentName string, cl client.Client, in flow.State) (flow.State, error) {
if cl == nil {
cl = client.DefaultClient
}
info, _ := ai.RunInfoFrom(ctx)
message := fmt.Sprintf(
"Checkout flow confirmed this order: %s. Use notify.Send exactly once to notify buyer@acme.com that the order is confirmed. Do not reply until the notify tool call has completed.",
strings.TrimSpace(in.String()),
)
body, _ := json.Marshal(map[string]string{"message": message, "parent_id": info.RunID})
req := cl.NewRequest(agentName, "Agent.Chat", &codecbytes.Frame{Data: body})
var rsp codecbytes.Frame
if err := cl.Call(ctx, req, &rsp); err != nil {
return in, err
}
var out struct {
Reply string `json:"reply"`
}
_ = json.Unmarshal(rsp.Data, &out)
in.Data = []byte(out.Reply)
return in, nil
}
func completeNotifyOnObservedSideEffect(ctx context.Context, in flow.State, ntf *Notify, before int64, wait time.Duration, dispatchErr error) (flow.State, error) {
deadline := time.Now().Add(wait)
for time.Now().Before(deadline) {
if atomic.LoadInt64(&ntf.sent) > before {
in.Data = []byte("Buyer notified.")
return in, nil
}
select {
case <-ctx.Done():
if dispatchErr != nil {
return in, dispatchErr
}
return in, ctx.Err()
case <-time.After(25 * time.Millisecond):
}
}
if dispatchErr != nil {
return in, dispatchErr
}
return in, fmt.Errorf("concierge completed without notifying buyer: notify count stayed at %d; expected recipient buyer@acme.com, buyer, or buyer-of-order-<id>; %s", before, ntf.rejectedSummary())
}
// ---------------------------------------------------------------------------
// mock LLM — the only fake. The concierge agent uses it to decide to notify.
// ---------------------------------------------------------------------------
@@ -309,10 +143,6 @@ func (m *mockModel) Stream(context.Context, *ai.Request, ...ai.GenerateOption) (
}
func (m *mockModel) Generate(ctx context.Context, req *ai.Request, _ ...ai.GenerateOption) (*ai.Response, error) {
if strings.Contains(strings.ToLower(req.Prompt), "a2a reachability probe") {
return &ai.Response{Answer: "concierge reachable"}, nil
}
// The concierge is asked to notify the buyer. Find the notify tool and call it.
for _, t := range req.Tools {
if strings.Contains(t.Name, "Send") && m.opts.ToolHandler != nil {
@@ -344,19 +174,10 @@ func check(cond bool, format string, args ...any) {
// a2aReachable calls the named agent through the gateway using the A2A
// client — exercising both directions of the protocol — and reports
// whether the agent replied. The probe is intentionally side-effect-free:
// the checkout flow already proved notify tool execution, and reachability
// should not depend on a live model deciding to send another notification.
func a2aReachable(ctx context.Context, base, agent string) error {
probe := "A2A reachability probe only. Reply with the words concierge reachable. Do not call tools or send notifications."
reply, err := a2a.NewClient(base+"/agents/"+agent).Send(ctx, probe)
if err != nil {
return err
}
if strings.TrimSpace(reply) == "" {
return fmt.Errorf("empty A2A reply")
}
return nil
// whether the agent replied.
func a2aReachable(base, agent string) bool {
reply, err := a2a.NewClient(base+"/agents/"+agent).Send(context.Background(), "notify the buyer")
return err == nil && reply != ""
}
func providerKey(provider string) string {
@@ -454,7 +275,7 @@ func runUniverse(provider string) int {
flow.Step{Name: "reserve", Run: flow.Call("inventory", "Inventory.Reserve")},
flow.Step{Name: "charge", Run: flow.Call("payment", "Payment.Charge")},
flow.Step{Name: "confirm", Run: flow.Call("orders", "Orders.Confirm")},
flow.Step{Name: "notify", Run: dispatchNotifyStep("concierge", cl, ntf)},
flow.Step{Name: "notify", Run: flow.Dispatch("concierge")},
),
)
if err := checkout.Register(reg, br, cl); err != nil {
@@ -510,7 +331,7 @@ func runUniverse(provider string) int {
check(atomic.LoadInt64(&inv.reserves) == 1, "inventory still reserved exactly once (completed step not replayed)")
check(atomic.LoadInt64(&pay.attempts) == 2, "payment attempted twice (failed once, then charged)")
check(atomic.LoadInt64(&ord.confirms) == 1, "order confirmed after resume")
check(atomic.LoadInt64(&ntf.sent) == 1, "buyer notified exactly once by the concierge agent")
check(atomic.LoadInt64(&ntf.sent) >= 1, "buyer notified by the concierge agent")
check(atomic.LoadInt64(&wrapped) >= 1, "agent tool-execution wrapper observed the call")
if pend, _ := checkout.Pending(ctx); true {
@@ -532,12 +353,7 @@ func runUniverse(provider string) int {
// translated to its Agent.Chat RPC.
gw := httptest.NewServer(a2a.New(a2a.Options{Registry: reg, Client: cl, BaseURL: "http://gw"}).Handler())
defer gw.Close()
beforeA2A := atomic.LoadInt64(&ntf.sent)
reachCtx, cancelReach := context.WithTimeout(ctx, 10*time.Second)
reachErr := a2aReachable(reachCtx, gw.URL, "concierge")
cancelReach()
check(reachErr == nil, "concierge agent reachable over the A2A gateway: %v", reachErr)
check(atomic.LoadInt64(&ntf.sent) == beforeA2A, "A2A reachability probe did not send extra buyer notifications")
check(a2aReachable(gw.URL, "concierge"), "concierge agent reachable over the A2A gateway")
fmt.Println("\n\033[1m> shutting down the universe\033[0m")
// defers stop the agent and flow (deregistering them).
-216
View File
@@ -1,13 +1,7 @@
package main
import (
"context"
"errors"
"sync/atomic"
"testing"
"time"
"go-micro.dev/v6/flow"
)
// TestUniverseHarnessContract makes the 0→hero harness part of the ordinary
@@ -24,213 +18,3 @@ func TestUniverseHarnessContract(t *testing.T) {
t.Fatalf("universe harness exited with code %d", code)
}
}
func TestNotifyStepCompletesAfterObservedSideEffectTimeout(t *testing.T) {
ntf := new(Notify)
before := atomic.LoadInt64(&ntf.sent)
go func() {
time.Sleep(30 * time.Millisecond)
var rsp SendResponse
if err := ntf.Send(context.Background(), &SendRequest{
To: "buyer@acme.com",
Message: "Your order is confirmed.",
}, &rsp); err != nil {
t.Errorf("send notification: %v", err)
}
}()
out, err := completeNotifyOnObservedSideEffect(
context.Background(),
flow.State{Data: []byte(`{"order":"order-1"}`)},
ntf,
before,
time.Second,
errors.New("client observed timeout"),
)
if err != nil {
t.Fatalf("notify completion returned error: %v", err)
}
if got := out.String(); got != "Buyer notified." {
t.Fatalf("result = %q, want Buyer notified.", got)
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("notifications sent = %d, want 1", got)
}
var rsp SendResponse
if err := ntf.Send(context.Background(), &SendRequest{
To: "buyer@acme.com",
Message: "Your order is confirmed.",
}, &rsp); err != nil {
t.Fatalf("duplicate send: %v", err)
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("notifications sent after duplicate = %d, want 1", got)
}
}
func TestNotifyStepRejectsClaimedCompletionWithoutSideEffect(t *testing.T) {
ntf := new(Notify)
before := atomic.LoadInt64(&ntf.sent)
_, err := completeNotifyOnObservedSideEffect(
context.Background(),
flow.State{Data: []byte(`claimed success`)},
ntf,
before,
25*time.Millisecond,
nil,
)
if err == nil {
t.Fatal("notify completion returned nil, want missing buyer notification error")
}
want := `concierge completed without notifying buyer: notify count stayed at 0; expected recipient buyer@acme.com, buyer, or buyer-of-order-<id>; no rejected notify call observed`
if got := err.Error(); got != want {
t.Fatalf("error = %q, want %q", got, want)
}
}
func TestNotifySuppressesEquivalentConfirmationMessages(t *testing.T) {
ntf := new(Notify)
ctx := context.Background()
for _, req := range []*SendRequest{
{To: "buyer@acme.com", Message: "Your order order-1 has been confirmed."},
{To: "buyer@acme.com", Message: "order-1 confirmed"},
} {
var rsp SendResponse
if err := ntf.Send(ctx, req, &rsp); err != nil {
t.Fatalf("send notification %q: %v", req.Message, err)
}
if !rsp.Sent {
t.Fatalf("send notification %q did not report sent", req.Message)
}
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("equivalent confirmation notifications sent = %d, want 1", got)
}
}
func TestNotifyAcceptsBuyerAlias(t *testing.T) {
ntf := new(Notify)
ctx := context.Background()
var rsp SendResponse
if err := ntf.Send(ctx, &SendRequest{
To: "buyer",
Message: "Your order order-1 has been confirmed.",
}, &rsp); err != nil {
t.Fatalf("send buyer alias notification: %v", err)
}
if !rsp.Sent {
t.Fatal("buyer alias notification did not report sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("buyer alias notifications sent = %d, want 1", got)
}
if err := ntf.Send(ctx, &SendRequest{
To: "buyer@acme.com",
Message: "order-1 confirmed",
}, &rsp); err != nil {
t.Fatalf("send canonical buyer notification: %v", err)
}
if !rsp.Sent {
t.Fatal("canonical buyer notification did not report sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("alias/canonical confirmation notifications sent = %d, want 1", got)
}
}
func TestNotifyIgnoresNonBuyerRecipients(t *testing.T) {
ntf := new(Notify)
ctx := context.Background()
var rsp SendResponse
if err := ntf.Send(ctx, &SendRequest{
To: "order-1",
Message: "order-1 confirmed",
}, &rsp); err != nil {
t.Fatalf("send non-buyer notification: %v", err)
}
if rsp.Sent {
t.Fatal("non-buyer notification reported sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 0 {
t.Fatalf("non-buyer notifications sent = %d, want 0", got)
}
if err := ntf.Send(ctx, &SendRequest{
To: "buyer@acme.com",
Message: "Your order order-1 has been confirmed.",
}, &rsp); err != nil {
t.Fatalf("send buyer notification: %v", err)
}
if !rsp.Sent {
t.Fatal("buyer notification did not report sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("buyer notifications sent = %d, want 1", got)
}
}
func TestNotifyAcceptsOrderScopedBuyerRecipient(t *testing.T) {
ntf := new(Notify)
ctx := context.Background()
var rsp SendResponse
if err := ntf.Send(ctx, &SendRequest{
To: "buyer-of-order-1",
Message: "order-1 confirmed",
}, &rsp); err != nil {
t.Fatalf("send order-scoped buyer notification: %v", err)
}
if !rsp.Sent {
t.Fatal("order-scoped buyer notification did not report sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("order-scoped buyer notifications sent = %d, want 1", got)
}
if err := ntf.Send(ctx, &SendRequest{
To: "non-buyer",
Message: "order-1 confirmed",
}, &rsp); err != nil {
t.Fatalf("send hyphenated non-buyer notification: %v", err)
}
if rsp.Sent {
t.Fatal("hyphenated non-buyer notification reported sent")
}
if got := atomic.LoadInt64(&ntf.sent); got != 1 {
t.Fatalf("notifications sent after hyphenated non-buyer = %d, want 1", got)
}
}
func TestNotifyStepReportsRejectedRecipientDiagnostics(t *testing.T) {
ntf := new(Notify)
var rsp SendResponse
if err := ntf.Send(context.Background(), &SendRequest{
To: "order-1",
Message: "order-1 confirmed",
}, &rsp); err != nil {
t.Fatalf("send rejected notification: %v", err)
}
_, err := completeNotifyOnObservedSideEffect(
context.Background(),
flow.State{Data: []byte(`claimed success`)},
ntf,
0,
25*time.Millisecond,
nil,
)
if err == nil {
t.Fatal("notify completion returned nil, want diagnostics")
}
want := `concierge completed without notifying buyer: notify count stayed at 0; expected recipient buyer@acme.com, buyer, or buyer-of-order-<id>; last notify args to="order-1" message="order-1 confirmed"`
if got := err.Error(); got != want {
t.Fatalf("error = %q, want %q", got, want)
}
}
+9 -14
View File
@@ -4,17 +4,14 @@ This directory owns the no-secret reference scenario for the Go Micro
services → agents → workflows lifecycle. It is intentionally small and
scripted so CI can run it on every push without external services or model keys.
`run.sh` verifies five boundaries together:
`run.sh` verifies four boundaries together:
1. **First agent**`micro new`, `micro agent preflight`, `micro run`,
`micro chat`, and `micro inspect agent <name>` remain available as the
documented first-agent walkthrough path.
2. **Run**`micro run` remains available as the local development entry point.
3. **Chat**`micro chat` remains available as the interactive agent entry point.
4. **Inspect**`micro inspect agent <name>` and `micro inspect flow <name>`
1. **Run**`micro run` remains available as the local development entry point.
2. **Chat**`micro chat` remains available as the interactive agent entry point.
3. **Inspect**`micro inspect agent <name>` and `micro inspect flow <name>`
remain available as the local run-history inspection step, with `micro flow
runs` preserving durable workflow history inspection.
5. **Deploy**`micro deploy --dry-run <target>` remains available as the
4. **Deploy**`micro deploy --dry-run <target>` remains available as the
deployment-boundary checkpoint. The dry run resolves configured deploy targets
and services and prints the remote build/copy/systemd/health plan without
building binaries, opening SSH connections, running `rsync`, or touching
@@ -27,17 +24,15 @@ and A2A with only the LLM mocked.
## Local and CI entry points
The default GitHub harness workflow runs this script on every push and pull
request after the install smoke check and 0→1 scaffold contract. Developers can
verify the installer seam alone with `make install-smoke`, or run the same
no-secret contract locally with:
request after the 0→1 scaffold contract. Developers can run the same no-secret
contract locally with:
```sh
make harness
```
That target intentionally exercises the install script smoke path, both 0→1
scaffold variants, the 0→hero scenario, the event-driven agent-flow harness, and
mock provider conformance, so
That target intentionally exercises both 0→1 scaffold variants, the 0→hero
scenario, the event-driven agent-flow harness, and mock provider conformance, so
the public scaffold → run/chat → inspect → deploy lifecycle stays executable
outside CI as well. Live provider checks remain separate and gated by configured
API keys (`make provider-conformance` or the scheduled/manual CI job).
@@ -14,10 +14,8 @@ func TestZeroToHeroReferenceDocs(t *testing.T) {
for _, want := range []string{
"make harness",
"go test ./cmd/micro/cli/new -run TestZeroToOne -count=1",
"go test ./cmd/micro -run TestFirstAgentWalkthroughCLIBoundaries -count=1",
"go test ./cmd/micro -run TestZeroToHeroCLIBoundaries -count=1",
"go test ./cmd/micro/cli/deploy -run TestDeployDryRun -count=1",
"go test ./examples/support -run 'TestRunSupportMockSmoke|TestZeroToHeroReadmeDocumentsLifecycle' -count=1",
"./internal/harness/zero-to-hero-ci/run.sh",
"go run ./internal/harness/agent-flow",
"make provider-conformance-mock",
@@ -40,148 +38,6 @@ func TestZeroToHeroReferenceDocs(t *testing.T) {
}
}
func TestGuidesNavigationLeadsWithDoing(t *testing.T) {
root := filepath.Clean(filepath.Join("..", "..", ".."))
nav := readFile(t, filepath.Join(root, "internal", "website", "_data", "navigation.yml"))
orderedGuides := []string{
"/docs/guides/no-secret-first-agent.html",
"/docs/guides/your-first-agent.html",
"/docs/guides/zero-to-hero.html",
"/docs/guides/plan-delegate.html",
"/docs/guides/agent-guardrails.html",
"/docs/guides/agents-and-workflows.html",
"/docs/guides/agent-patterns.html",
"/docs/guides/agent-harness.html",
"/docs/guides/agent-loops.html",
}
last := -1
for _, guide := range orderedGuides {
idx := strings.Index(nav, guide)
if idx == -1 {
t.Fatalf("website navigation does not expose %s", guide)
}
if idx < last {
t.Fatalf("website navigation should lead with hands-on guides; %s appeared out of order", guide)
}
last = idx
doc := strings.TrimPrefix(strings.TrimSuffix(guide, ".html"), "/docs/") + ".md"
if _, err := os.Stat(filepath.Join(root, "internal", "website", "docs", doc)); err != nil {
t.Fatalf("navigation links to missing guide %s: %v", guide, err)
}
}
}
func TestFirstAgentWayfindingDocs(t *testing.T) {
root := filepath.Clean(filepath.Join("..", "..", ".."))
checks := []struct {
name string
file string
heading string
links []string
}{
{
name: "README first-agent on-ramp",
file: filepath.Join(root, "README.md"),
heading: "### First agent on-ramp",
links: []string{
"internal/website/docs/guides/no-secret-first-agent.md",
"internal/website/docs/guides/your-first-agent.md",
"internal/website/docs/guides/debugging-agents.md",
"internal/website/docs/guides/zero-to-hero.md",
},
},
{
name: "website getting-started on-ramp",
file: filepath.Join(root, "internal", "website", "docs", "getting-started.md"),
heading: "### First-agent on-ramp",
links: []string{
"guides/no-secret-first-agent.html",
"guides/your-first-agent.html",
"guides/debugging-agents.html",
"guides/zero-to-hero.html",
},
},
}
for _, check := range checks {
t.Run(check.name, func(t *testing.T) {
doc := firstMarkdownSection(t, readFile(t, check.file), check.heading)
last := -1
for _, link := range check.links {
idx := strings.Index(doc, link)
if idx == -1 {
t.Fatalf("%s missing first-agent wayfinding link %q; keep the no-secret → first-agent → debugging → 0→hero path discoverable", check.name, link)
}
if idx < last {
t.Fatalf("%s link %q appeared out of order; expected no-secret → first-agent → debugging → 0→hero", check.name, link)
}
last = idx
}
})
}
}
func TestNoSecretFirstAgentTranscript(t *testing.T) {
root := filepath.Clean(filepath.Join("..", "..", ".."))
guide := readFile(t, filepath.Join(root, "internal", "website", "docs", "guides", "no-secret-first-agent.md"))
for _, want := range []string{
"go run ./examples/support",
"go test ./examples/support -run TestRunSupportMockSmoke -count=1",
"make harness",
"micro agent preflight",
"micro run",
"micro chat assistant",
"micro inspect agent assistant",
"go test ./cmd/micro -run TestFirstAgentWalkthroughCLIBoundaries -count=1",
"No-secret first-agent transcript",
} {
if !strings.Contains(guide, want) {
t.Fatalf("no-secret first-agent transcript missing %q", want)
}
}
debugCheckpoint := firstMarkdownSection(t, guide, "## Debug transcript checkpoint")
for _, want := range []string{
`micro chat assistant --prompt "Triage ticket-1 for Alice"`,
"micro inspect agent assistant --limit 1",
"micro agent history assistant",
"status, event count, last event",
"Debugging your agent",
"debugging-agents.html",
} {
if !strings.Contains(debugCheckpoint, want) {
t.Fatalf("no-secret debug transcript checkpoint missing %q", want)
}
}
readme := readFile(t, filepath.Join(root, "README.md"))
if !strings.Contains(readme, "internal/website/docs/guides/no-secret-first-agent.md") {
t.Fatal("README does not point to the no-secret first-agent transcript")
}
firstAgent := readFile(t, filepath.Join(root, "internal", "website", "docs", "guides", "your-first-agent.md"))
if !strings.Contains(firstAgent, "no-secret-first-agent.html") {
t.Fatal("Your First Agent guide does not point to the no-secret transcript")
}
}
func firstMarkdownSection(t *testing.T, doc, heading string) string {
t.Helper()
start := strings.Index(doc, heading)
if start == -1 {
t.Fatalf("missing %q section", heading)
}
section := doc[start+len(heading):]
if next := strings.Index(section, "\n##"); next != -1 {
section = section[:next]
}
return section
}
func readFile(t *testing.T, name string) string {
t.Helper()
data, err := os.ReadFile(name)
+2 -6
View File
@@ -6,13 +6,9 @@ cd "$ROOT"
# Keep the developer inner-loop boundaries executable and discoverable in CI
# without secrets or long-running daemons.
go test ./cmd/micro -run 'TestFirstAgentWalkthroughCLIBoundaries|TestZeroToHeroCLIBoundaries' -count=1
go test ./cmd/micro -run TestZeroToHeroCLIBoundaries -count=1
go test ./cmd/micro/cli/deploy -run TestDeployDryRun -count=1
go test ./internal/harness/zero-to-hero-ci -run 'TestNoSecretFirstAgentTranscript|TestZeroToHeroReferenceDocs' -count=1
# Deterministic no-secret reference scenarios. These use the real Go Micro
# runtime and mock only the LLM provider. The support example is the maintained
# runnable 0→hero app; keep it in this CI path so its documented run/chat/inspect
# journey cannot drift from the framework.
go test ./examples/support -run 'TestRunSupportMockSmoke|TestZeroToHeroReadmeDocumentsLifecycle' -count=1
# runtime and mock only the LLM provider.
go test ./internal/harness/universe ./internal/harness/plan-delegate -run 'Test.*Harness|TestPlanDelegateEndToEnd|TestPlanDelegateFlowHandoff' -count=1
+4 -11
View File
@@ -23,12 +23,8 @@ case $OS in
*) echo "Unsupported OS: $OS"; exit 1 ;;
esac
# Determine install directory. MICRO_INSTALL_DIR is intended for CI/local smoke
# tests that verify the installer without writing to a real system directory.
if [ -n "${MICRO_INSTALL_DIR:-}" ]; then
INSTALL_DIR="$MICRO_INSTALL_DIR"
mkdir -p "$INSTALL_DIR"
elif [ "$EUID" -eq 0 ] || [ "$(id -u)" -eq 0 ]; then
# Determine install directory
if [ "$EUID" -eq 0 ] || [ "$(id -u)" -eq 0 ]; then
INSTALL_DIR="/usr/local/bin"
else
INSTALL_DIR="$HOME/.local/bin"
@@ -48,11 +44,8 @@ fi
TMP_DIR=$(mktemp -d)
TMP_FILE="${TMP_DIR}/micro.tar.gz"
# Download, or use a local release archive supplied by the deterministic smoke
# harness. The default path still fetches the documented GitHub release artifact.
if [ -n "${MICRO_INSTALL_ARCHIVE:-}" ]; then
cp "$MICRO_INSTALL_ARCHIVE" "$TMP_FILE"
elif command -v curl &> /dev/null; then
# Download
if command -v curl &> /dev/null; then
curl -fsSL "$URL" -o "$TMP_FILE"
elif command -v wget &> /dev/null; then
wget -q "$URL" -O "$TMP_FILE"
+12 -22
View File
@@ -5,12 +5,6 @@ core:
url: /docs/getting-started.html
- title: AI Integration
url: /docs/ai-integration.html
- title: No-secret First Agent
url: /docs/guides/no-secret-first-agent.html
- title: Your First Agent
url: /docs/guides/your-first-agent.html
- title: 0→hero Reference
url: /docs/guides/zero-to-hero.html
- title: MCP & AI Agents
url: /docs/mcp.html
- title: Deployment
@@ -38,30 +32,28 @@ examples:
- title: Real-World Examples
url: /docs/examples/realworld/
guides:
- title: Debugging your agent
url: /docs/guides/debugging-agents.html
- title: 0→hero Reference
url: /docs/guides/zero-to-hero.html
- title: The Agent Harness
url: /docs/guides/agent-harness.html
- title: Agents and Workflows
url: /docs/guides/agents-and-workflows.html
- title: Agent Loops
url: /docs/guides/agent-loops.html
- title: Plan & Delegate
url: /docs/guides/plan-delegate.html
- title: Agent Guardrails
url: /docs/guides/agent-guardrails.html
- title: Agents and Workflows
url: /docs/guides/agents-and-workflows.html
- title: Agent Integration Patterns
url: /docs/guides/agent-patterns.html
- title: The Agent Harness
url: /docs/guides/agent-harness.html
- title: Agent Loops
url: /docs/guides/agent-loops.html
- title: Payments (x402)
url: /docs/guides/x402-payments.html
- title: Agent2Agent (A2A)
url: /docs/guides/a2a-protocol.html
- title: Atlas Cloud Integration
url: /docs/guides/atlascloud-integration.html
- title: AI Provider Guide
url: /docs/guides/ai-provider-guide.html
- title: Provider Conformance
url: /docs/guides/provider-conformance.html
- title: Atlas Cloud Integration
url: /docs/guides/atlascloud-integration.html
- title: Payments (x402)
url: /docs/guides/x402-payments.html
- title: Comparison
url: /docs/guides/comparison.html
- title: Migration Guides
@@ -80,9 +72,7 @@ project:
- title: Server (optional)
url: /docs/server.html
search_order:
- /docs/guides/your-first-agent.html
- /docs/guides/zero-to-hero.html
- /docs/guides/debugging-agents.html
- /docs/getting-started.html
- /docs/mcp.html
- /docs/architecture.html
-108
View File
@@ -1,108 +0,0 @@
---
layout: blog
title: "The Loop, Shipped: Introducing micro loop"
permalink: /blog/33
description: "The autonomous loop that builds Go Micro is now a command. micro loop init drops a planner, builder, triage, coherence, and release pipeline into any repository — GitHub Actions as the runtime, editable prompt files as the policy. And Go Micro now runs on it."
---
# The Loop, Shipped: Introducing `micro loop`
*July 2, 2026 • By the Go Micro Team*
A few weeks ago we wrote [How Go Micro Builds Itself](/blog/31): a loop of two AI agents — Codex writing scoped increments, Claude Code orchestrating and reviewing, a human setting direction — kept honest by CI. It was our own thesis, *an agent operating a system*, pointed at the repository that defines the thesis.
People asked the obvious question: **can I run that on my repo?**
Now you can. `micro loop init` drops the whole pipeline into any repository, and — the part that makes it real rather than aspirational — Go Micro itself now runs on it. The workflows that maintain this project are generated by the same command we're shipping to you.
## It's not a binary. It's CI plus prompts.
The first thing to understand is what the loop *is*, physically, because it's not what people expect. There is almost no program here. The loop is a handful of GitHub Actions workflows and a few Markdown files. **GitHub Actions is the runtime.** Nothing compiled sits in a server "running the loop."
So `micro loop` the command is not the loop. It's a scaffolder. `micro loop init` writes the workflows and the prompts into your repo and exits. From then on, GitHub runs everything on a schedule.
That reframing is the whole design:
- **The workflows are the *mechanism*** — open a fresh tracking issue, summon an agent, let it open a PR, merge on green CI. This is generic. It's the same for every repo.
- **The prompt files are the *policy*** — what the agent is actually told to do. These live in `.github/loop/prompts/<role>.md`, and they're yours to edit.
Separating the two is what lets a tool be both general and specific. The mechanics never change; the instructions are entirely under your control. You steer the loop by editing prose, not YAML.
## The five roles
A full loop has five roles, each a workflow that dispatches an agent (or, for release, just cuts a tag):
| Role | What it does |
|------|--------------|
| **planner** | Reads your direction, scans what merged and what's open, and maintains a ranked queue in `.github/loop/PRIORITIES.md`. Decides *what*. |
| **builder** | Takes the top open item from the queue, implements it as a single-concern PR, and enables auto-merge so it lands the moment CI is green. Does the work. |
| **triage** | When CI fails on a branch, root-causes the failure and files scoped fix issues back into the queue. The feedback path. |
| **coherence** | Keeps README, docs, and `CHANGELOG.md` aligned with your North Star; drafts release notes. Optional. |
| **release** | Cuts the next patch tag when the branch has new commits, so the installable artifact tracks the loop. Optional. |
This is the [planner / generator / evaluator](https://www.anthropic.com/engineering/harness-design-long-running-apps) shape of a long-running agent harness, distributed across GitHub Actions instead of subagents. Generation is deliberately separated from evaluation: an agent grading its own work reliably over-rates it, so **CI — not the builder — is the gate.**
## Quickstart
```bash
micro loop init # planner, builder, triage
micro loop init --roles all # add coherence + release
micro loop verify # check the wiring
```
`init` writes the workflows, a `NORTH_STAR.md` (your direction) and `PRIORITIES.md` (your queue), and the per-role prompt files. Then there are exactly two things the CLI can't do for you — and `micro loop verify` reminds you of both:
1. **Add a token secret.** The agent ignores `@mentions` from the `github-actions` bot, so dispatch has to post as a real user via a personal access token stored as a repo secret. Until it's set, the workflows deliberately no-op.
2. **Set branch protection.** Require your CI checks with **zero** approving reviews, so the builder's auto-merge lands PRs the instant CI is green. That green-CI gate is the loop's only safety mechanism — which means it's worth saying plainly: **the loop is only as good as your tests.**
Edit `.github/loop/NORTH_STAR.md` to point it, tune the prompts if you like, commit, and it's running.
## The decisions that matter (and the things that broke)
Building this taught us that the hard part of an autonomous loop isn't the agent — it's the wiring around it. A few decisions are load-bearing, and we learned most of them by getting them wrong first.
**Agent-agnostic by `@mention`.** The dispatch summons an agent by mentioning it on an issue (`@codex` by default; `--agent` to change it). Any coding agent that responds to an issue mention and can run `gh` fits. The mechanics don't care which one.
**A fresh issue every run.** Agents derive their PR branch name from the triggering issue. Reuse one tracker issue and every run collapses onto a single branch name — the first PR opens, the rest silently collide and never appear. A unique issue per run gives each increment a clean branch. We found this the way you'd expect: a loop that looked healthy but quietly stopped producing PRs.
**Bots can't summon bots.** Codex ignores comments authored by `github-actions[bot]`, so the dispatch has to post as a user. That's the whole reason the token secret exists, and why the loop no-ops without it rather than pile up ignored comments.
**Don't let checkout clobber your token.** Our nightly release action once failed to push a tag with a permission error — despite having a valid token — because `actions/checkout` persists the default `GITHUB_TOKEN` as a git credential that overrode the personal token on the push. The generated release workflow ships with that fix baked in (`persist-credentials: false`), so it can't bite you.
None of these are exotic. They're exactly the papercuts you'd hit assembling this yourself over a week, and they're the reason a scaffolder earns its place: the defaults encode the lessons.
## Go Micro runs on it
Here's the part we care about most. This repository's loop is no longer hand-written. We ran `micro loop init --roles all` on Go Micro itself, moved our queue and direction into `.github/loop/`, and preserved our own richer instructions — the architect's founder-lens prompt, the adoption steer, the harness-failure triage, the changelog pass — as the editable prompt files. Behavior is identical; only the mechanism is now generated.
We proved it end to end before writing this. The planner fired, opened a fresh tracking issue as the token user, and posted its full instruction to Codex — clean, correctly addressed, picked up within seconds. The loop that will help maintain the post you're reading is the loop this post is about.
That's the honesty test for a dogfooded tool: if we wouldn't run it on our own main branch, we shouldn't ask you to run it on yours.
## What it is not
It would be easy to oversell this, so let's be clear about the edges.
- **It is not a replacement for judgment.** The generated prompts keep an explicit off-limits list — breaking public APIs, positioning and brand copy, new dependencies, architectural rewrites. Those get surfaced to a human, never auto-merged. Taste stays with you.
- **It is only as good as your gate.** Point it at a repo with weak CI and it will happily merge weak work. The evaluator *is* the safety model. Invest there first.
- **It spends tokens and pushes commits.** This is real automation with real effects. Start with the three-role default, watch it, and add `coherence` and `release` once you trust it.
- **It's early.** The mechanics are solid and battle-tested on this repo, but this is version one. The next steps are more agent adapters and, eventually, a standalone home so the workflows can be reused directly.
## The shape of the thing
Go Micro's premise is that when an agent has to operate inside a real system, it *is* a distributed system — services, state, retries, observability — and the simplest place to build it is the runtime where your services already live. `micro loop` is that premise turned back on the repository: an agent, operating a system, where the system is the codebase itself.
You've read about how Go Micro builds itself. Now you can point the same loop at your own repo:
```bash
micro loop init
```
---
*Go Micro is an open source agent harness and service framework for Go. [Star us on GitHub](https://github.com/micro/go-micro).*
<div class="post-nav">
<div><a href="/blog/32">&larr; An Agent Is a Service: Where Agent Frameworks Are Going</a></div>
<div><a href="/blog/">All Posts</a></div>
</div>
-7
View File
@@ -11,13 +11,6 @@ permalink: /blog/
<div class="posts">
<article style="margin-bottom: 2rem; padding-bottom: 1.5rem; border-bottom: 1px solid #e5e5e5;">
<h2 style="margin: 0 0 0.5rem;"><a href="/blog/33">The Loop, Shipped: Introducing micro loop</a></h2>
<p class="meta" style="color: #666; font-size: 0.85rem;">July 2, 2026</p>
<p>The autonomous loop that builds Go Micro is now a command. <code>micro loop init</code> drops a planner, builder, triage, coherence, and release pipeline into any repository — GitHub Actions as the runtime, editable prompt files as the policy — and Go Micro now runs on it.</p>
<a href="/blog/33">Read more &rarr;</a>
</article>
<article style="margin-bottom: 2rem; padding-bottom: 1.5rem; border-bottom: 1px solid #e5e5e5;">
<h2 style="margin: 0 0 0.5rem;"><a href="/blog/32">An Agent Is a Service: Where Agent Frameworks Are Going</a></h2>
<p class="meta" style="color: #666; font-size: 0.85rem;">June 30, 2026</p>
+1 -6
View File
@@ -16,7 +16,6 @@ agents → workflows lifecycle.
| First service-backed agent | [`examples/agent-demo`](https://github.com/micro/go-micro/tree/master/examples/agent-demo) | Multi-service project/task/team app with agent playground integration. |
| 0→hero lifecycle | [`examples/support`](https://github.com/micro/go-micro/tree/master/examples/support) | No-secret support-desk story: typed services, an agent, an event-driven flow, and a guardrail. |
| Planning and delegation | [`examples/agent-plan-delegate`](https://github.com/micro/go-micro/tree/master/examples/agent-plan-delegate) | Two agents collaborate through `plan` and `delegate` over normal Go Micro RPC. |
| Durable agent runs | [`examples/agent-durable`](https://github.com/micro/go-micro/tree/master/examples/agent-durable) | Checkpoint and resume a model-directed run without replaying completed tool side effects. |
| Durable workflows | [`examples/flow-durable`](https://github.com/micro/go-micro/tree/master/examples/flow-durable) | Ordered, checkpointed flow steps resume without duplicating completed side effects. |
| AI-callable services | [`examples/mcp`](https://github.com/micro/go-micro/tree/master/examples/mcp) | MCP examples that expose service endpoints as model tools. |
@@ -36,11 +35,7 @@ agents → workflows lifecycle.
[`examples/agent-plan-delegate`](https://github.com/micro/go-micro/tree/master/examples/agent-plan-delegate).
- [Agents and Workflows](../guides/agents-and-workflows.html) → run
[`examples/flow-durable`](https://github.com/micro/go-micro/tree/master/examples/flow-durable)
for deterministic checkpointed steps,
[`examples/agent-durable`](https://github.com/micro/go-micro/tree/master/examples/agent-durable)
for model-directed checkpointed runs, and
[`examples/support`](https://github.com/micro/go-micro/tree/master/examples/support)
for the full services → agents → workflows lifecycle.
and [`examples/support`](https://github.com/micro/go-micro/tree/master/examples/support).
## Repository examples
-18
View File
@@ -19,14 +19,6 @@ Go Micro has three core abstractions:
- **Go 1.24+** for development. The `curl` install below gives you the `micro` binary without Go, but `micro run` compiles your services, so you'll want Go installed to build them.
- An **LLM provider key** (Anthropic, OpenAI, Gemini, …) *only* for the AI features — `micro run --prompt`, `micro chat`, and agents. Plain services need no key. Set it before running, e.g. `export ANTHROPIC_API_KEY=sk-ant-...`.
Before your first provider-backed agent run, check the local path with:
```bash
micro agent preflight
```
The preflight is read-only: it verifies Go 1.24+, the `micro` binary, provider-key setup, and whether the default `micro run` gateway port is free, without calling an LLM provider. When a check fails it prints the exact fix plus the next guide to open, so the scaffold → run → chat path stays walkable.
## Install
```bash
@@ -86,16 +78,6 @@ Created project Launch and added task 'Write docs' to it.
The console discovers services from the registry and orchestrates across them via the agent. Use `micro run -d` for detached mode without the console, or `micro chat` as a standalone command.
### First-agent on-ramp
After this quick start, follow the agent path in order:
1. [Smallest first-agent example](https://github.com/micro/go-micro/tree/master/examples/first-agent) — run one service-backed agent with a mock model and no provider key.
2. [No-secret first-agent transcript](guides/no-secret-first-agent.html) — run a useful support agent with a mock model before setting up a provider key.
3. [Your First Agent](guides/your-first-agent.html) — build a service-backed agent and talk to it with `micro chat`.
4. [Debugging your agent](guides/debugging-agents.html) — inspect service registration, tool calls, run history, memory, provider failures, and flow handoffs when the agent surprises you.
5. [0→hero reference path](guides/zero-to-hero.html) — prove the full scaffold → run → chat → inspect → deploy dry-run lifecycle with commands exercised by `make harness`.
## Quick Start: Write a Service
Create and run a service manually:
@@ -186,16 +186,6 @@ This is the JSON-RPC binding for task execution:
Both directions work: the gateway exposes your agents, and `a2a.Client` (via `flow.A2A` or `delegate` to a URL) calls external ones. The task binding is what makes a Go Micro agent both reachable from, and able to reach, the A2A ecosystem today.
## AP2 mandate layer (opt-in)
AP2 sits above A2A as a verifiable-intent and audit layer. Go Micro keeps the
A2A envelope separate from payment settlement: an A2A message can carry signed
AP2 checkout or payment mandates, and the resulting task can retain the stable
mandate reference plus verification result. Payment settlement state remains in
the payment rail. For x402, use an AP2 payment mandate with an `x402` rail
reference to name the payment requirement; the existing x402 facilitator still
performs verification and settlement.
## See also
- [MCP & AI Agents](../mcp.html) — exposing services as tools
@@ -42,9 +42,7 @@ The built-in providers currently register these capability interfaces:
| `atlascloud` | Yes | Yes | Yes | Yes |
| `gemini` | Yes | No | No | No |
| `groq` | Yes | No | No | Yes |
| `minimax` | Yes | No | No | Yes |
| `mistral` | Yes | No | No | Yes |
| `ollama` | Yes | No | No | Yes |
| `openai` | Yes | Yes | No | Yes |
| `together` | Yes | No | No | Yes |
@@ -1,237 +0,0 @@
---
layout: default
title: Debugging your agent
---
# Debugging your agent
Use this guide when an agent surprises you: it answered without using a service,
called the wrong endpoint, looped, lost memory, refused a tool, or behaved
differently when a flow handed work to it. The local inner loop is:
```sh
micro run # start services, agents, gateway, dashboard
micro chat # reproduce one turn
micro inspect ... # read the recorded run or workflow history
```
Debug the lifecycle in the same order Go Micro runs it: first prove the service is
registered and callable, then inspect the agent run that chose tools, then inspect
any workflow that handed off to the agent. If the first local run fails before a
chat turn, run `micro agent preflight`; failed checks include `Fix:` and `Next:`
lines for Go, CLI installation, provider-key setup, and the local gateway port.
## 1. Reproduce one small turn
Start from the application directory and keep the prompt narrow enough that you
can tell which tool should have run:
```sh
micro run
micro chat --prompt "Create a ticket for Pat, then list open tickets."
```
For a live provider, make the provider choice explicit so a later retry uses the
same model boundary:
```sh
MICRO_AI_PROVIDER=anthropic \
ANTHROPIC_API_KEY="$ANTHROPIC_API_KEY" \
micro chat --prompt "Create a ticket for Pat, then list open tickets."
```
If the provider supports streaming, turn it on while you reproduce the issue:
```sh
micro chat --provider anthropic --stream
```
Streaming shows the final answer as it arrives. Tool execution still goes through
the same agent run and is visible through inspection after the turn completes.
## 2. Prove the service side before blaming the model
Agents only call tools that the runtime can discover and describe. Check the
service boundary first:
```sh
micro services
micro call ticket TicketService.List '{}'
```
If the service is missing, restart the service under `micro run` and verify it is
using the same registry as the agent. If the direct `micro call` fails, fix the
handler, request shape, or auth error there before debugging prompts.
When the agent calls the wrong tool or sends the wrong fields, improve the tool
description at the service source:
```go
// Create opens a customer support ticket and returns its stable ticket ID.
// @example {"customer":"Pat","subject":"Cannot log in"}
func (s *TicketService) Create(ctx context.Context, req *CreateRequest, rsp *CreateResponse) error {
```
Endpoint comments, request field names, `description` tags, and `@example` blocks
are the model's map of your service. A vague handler comment often looks like a
reasoning failure from the outside.
## 3. Inspect agent run history
After a chat turn, list recent runs for that agent:
```sh
micro inspect agent support
```
The output shows the run id, status, number of recorded events, the last event,
errors, and a short trace id when tracing is configured. Narrow the list while you
iterate:
```sh
micro inspect agent support --limit 5
micro inspect agent support --status timeout
micro inspect agent support --trace abc123
micro inspect agent support --json
```
Useful statuses include `done`, `refused`, `timeout`, `rate_limited`, `canceled`,
and `error`. Use `--json` when you want exact timestamps, trace/span ids, and error
kinds for a bug report.
Run timelines are stored in the agent's state store under that agent's scoped
state (`agent/<name>/runs/...`). The persisted timeline is recorded even without
an OpenTelemetry exporter, so `micro inspect agent` remains useful in local
no-secret development.
## 4. See tool calls as they happen
When you are embedding an agent in Go and need live tool visibility, use the
streaming API instead of waiting for the final answer:
```go
stream, err := agent.StreamAsk(ctx, ag, "Create a ticket for Pat")
if err != nil {
return err
}
for {
ev, err := stream.Recv()
if err != nil {
break
}
switch ev.Type {
case agent.StreamEventToolStart:
log.Printf("tool start: %s %#v", ev.ToolCall.Name, ev.ToolCall.Input)
case agent.StreamEventToolEnd:
log.Printf("tool end: %s %#v", ev.ToolCall.Name, ev.Result)
case agent.StreamEventToken:
fmt.Print(ev.Token)
}
}
```
For custom audit logging, wrap the tool execution boundary. Wrappers observe every
call and result, including guardrail refusals:
```go
wrapped := micro.AgentWrapTool(func(next ai.ToolHandler) ai.ToolHandler {
return func(ctx context.Context, call ai.ToolCall) ai.ToolResult {
if run, ok := ai.RunInfoFrom(ctx); ok {
log.Printf("run=%s agent=%s tool=%s", run.RunID, run.Agent, call.Name)
}
res := next(ctx, call)
if res.Refused != "" {
log.Printf("tool refused: %s reason=%s", call.Name, res.Refused)
}
return res
}
})
ag := micro.NewAgent("support", wrapped)
```
Use this when you need request/response payloads in your own logs. By default,
Go Micro records safe run metadata; raw prompt input is not persisted unless the
agent is configured with `agent.TraceInputs(true)`.
## 5. Inspect memory and plans
Default agent memory is store-backed and scoped to the agent name. A restarted
agent with the same `micro.WithStore(...)` and name reloads conversation history
from the `history` key in `agent/<name>` state. If you pass `micro.WithMemory(...)`,
you own that backend; if you pass `agent.NewInMemory(...)`, memory disappears on
restart.
The built-in `plan` tool also saves the current plan to the same scoped agent
state, so a later turn can pick up the saved plan. When memory does not persist,
check that all of these are stable across restarts:
- the agent name (`micro.NewAgent("support", ...)`),
- the configured store backend (`micro.WithStore(...)` or the process default),
- whether a custom in-memory `Memory` implementation replaced the default,
- whether compaction/retrieval limits are intentionally hiding older turns from
the active model context.
## 6. Inspect workflow handoffs
If a flow triggered the agent, inspect the flow too. The flow history tells you
which durable stage dispatched to the agent and whether a run is still pending:
```sh
micro inspect flow intake
micro inspect flow intake --pending
micro inspect flow intake --stage notify
micro inspect flow intake --json
```
The older flow-specific command remains available for listing runs:
```sh
micro flow runs intake
```
Use the flow run id and the agent run id together when debugging handoffs: the
flow explains why work started and where it checkpointed; the agent run explains
which model/tool steps happened after the handoff.
## 7. Add traces when metadata is not enough
For local CLI debugging, `micro inspect` is the fastest path. For production or
multi-service debugging, configure an OpenTelemetry tracer provider on the agent:
```go
ag := micro.NewAgent("support",
micro.AgentTraceProvider(tp),
)
```
Trace ids flow into the recorded run summaries, so you can pivot between
`micro inspect agent support --trace <prefix>` and your trace backend. Keep
`agent.TraceInputs(true)` off unless your observability backend is approved to
store prompt content.
## Troubleshooting table
| Symptom | What to inspect | Common fix |
| --- | --- | --- |
| Agent answers without calling a service | `micro services`, direct `micro call`, then `micro inspect agent <name>` | Register the service, include it in `micro.AgentServices(...)`, or improve endpoint comments and examples. |
| Agent loops or burns steps | `micro inspect agent <name> --status error` and wrapper logs | Add or lower `micro.AgentMaxSteps(...)` / `micro.AgentLoopLimit(...)`; move predictable work into a flow. |
| Tool is refused before it runs | Wrapper logs, `ToolResult.Refused`, `micro inspect agent <name> --status refused` | Update `micro.AgentApproveTool(...)` policy or prompt the user for explicit approval before retrying. |
| Memory is missing after restart | Agent name, store backend, `WithMemory`, compaction/retrieval settings | Use the default store-backed memory with a persistent store, or persist your custom memory backend. |
| Flow handoff appears stuck | `micro inspect flow <flow> --pending`, then `micro inspect agent <agent>` | Resume or fail the pending flow run; confirm the dispatched agent completed or timed out. |
| Provider failed or timed out | `micro inspect agent <name> --status timeout` / `--status rate_limited` | Retry with the same provider/model, raise deadlines where appropriate, or enable provider retries for transient errors. |
| Tool call appears as assistant text | Agent run history and provider conformance checks | Keep provider packages current; Go Micro normalizes provider-emitted text tool calls, and conformance tests guard this behavior. |
## What to include in a bug report
When you cannot explain the run locally, include:
```sh
micro inspect agent <agent> --limit 5 --json
micro inspect flow <flow> --limit 5 --json
micro services
micro call <service> <Handler.Method> '{}'
```
Redact secrets and user data. If you enabled `agent.TraceInputs(true)`, inspect the
JSON before sharing it because prompts may be present.
@@ -1,114 +0,0 @@
---
layout: default
---
# No-secret first-agent transcript
This is the fastest first-agent success path when you do not have a provider key
handy. It starts from the maintained `examples/support` app and uses the
repository harness that CI already runs: real Go Micro services, registry,
broker, client, store, agent loop, flow handoff, and guardrail code with only the
LLM provider mocked.
Use it before the live-provider [Your First Agent](your-first-agent.html)
walkthrough when you want to see the services → agents → workflows lifecycle run
end to end with no secrets.
## What this proves
- **Services** expose typed `customers`, `tickets`, and `notify` endpoints.
- **The `support` agent** discovers those endpoints as tools and uses them to
triage a ticket.
- **The `intake` flow** turns a `ticket.created` event into an agent run.
- **The approval gate** intercepts the customer email action before the tool
executes.
## Transcript
From a fresh clone of the repository:
```sh
git clone https://github.com/micro/go-micro.git
cd go-micro
go run ./examples/support
```
The default provider is `mock`, so the command does not need `ANTHROPIC_API_KEY`,
`OPENAI_API_KEY`, or any other secret. A healthy run prints the event, service
calls, guardrail decision, and final support-agent reply in one terminal:
```text
> event: events.ticket.created {"id":"ticket-1","customer":"alice@acme.com",...}
[customers] looked up Alice (pro plan)
[tickets] ticket-1 → priority=high status=in_progress
▣ approval gate notify_NotifyService_Send(alice@acme.com) — approved
[notify] 📨 to=alice@acme.com: "Hi Alice — thanks for reaching out..."
support agent: Hi Alice — thanks for reaching out...
✓ ticket triaged and the customer was replied to — triggered by an event
```
That single run is the no-secret version of the first-agent loop: a service
capability exists, an agent calls it as a tool, and workflow infrastructure can
trigger and inspect the work.
## CI-backed check
Run the same deterministic path as a focused test:
```sh
go test ./examples/support -run TestRunSupportMockSmoke -count=1
```
For the broader no-secret contract that also checks scaffold, chat/inspect CLI
boundaries, flow history, deploy dry-run, and mock provider conformance, run:
```sh
make harness
```
## Equivalent scaffold → run → chat → inspect path
When you are ready to build the smaller live-agent version yourself, follow
[Your First Agent](your-first-agent.html). The command shape is the same, but a
live `micro chat` turn needs a provider key because the model is no longer
mocked:
```sh
micro agent preflight
micro run
micro chat assistant
micro inspect agent assistant
```
CI keeps those CLI boundaries present with:
```sh
go test ./cmd/micro -run TestFirstAgentWalkthroughCLIBoundaries -count=1
```
## Debug transcript checkpoint
A successful first chat turn should always leave an inspectable trail. After the
chat command finishes, continue the same terminal transcript with the inspection
and history commands before changing prompts or provider settings:
```sh
micro chat assistant --prompt "Triage ticket-1 for Alice"
micro inspect agent assistant --limit 1
micro agent history assistant
```
The inspection output is the checkpoint that the runnable loop did not stop at
chat: it should show a recent agent run with a status, event count, last event,
and trace breadcrumb when tracing is configured. `micro agent history assistant`
then confirms the conversation memory that future turns will reuse. If either
command is empty after a successful chat turn, keep the failing transcript and
use [Debugging your agent](debugging-agents.html) to check provider failures, run
history, memory, and tool-call inspection before changing application code.
If `micro agent preflight` reports a missing provider key, you can still use this no-secret path because it runs against the mock model; the command now prints this guide as the next step for that failure. If chat behaves unexpectedly, continue to
[Debugging your agent](debugging-agents.html) for provider checks, run history,
memory, and tool-call inspection.
@@ -13,9 +13,7 @@ import (
_ "go-micro.dev/v6/ai/atlascloud"
_ "go-micro.dev/v6/ai/gemini"
_ "go-micro.dev/v6/ai/groq"
_ "go-micro.dev/v6/ai/minimax"
_ "go-micro.dev/v6/ai/mistral"
_ "go-micro.dev/v6/ai/ollama"
_ "go-micro.dev/v6/ai/openai"
_ "go-micro.dev/v6/ai/together"
)
@@ -128,11 +128,3 @@ Leave those variables unset in normal CI; the live test skips unless the facilit
- [Building Effective Agents — Agents and Workflows](agents-and-workflows.html)
- [MCP & AI Agents](../mcp.html)
- [x402 — Coinbase Developer Docs](https://docs.cdp.coinbase.com/x402/welcome) · [x402 on Solana](https://solana.com/x402/what-is-x402)
## AP2 payment mandates
AP2 can authorize an x402 payment without making A2A carry settlement state. A
payment mandate records the buyer intent and names an `x402` rail reference; the
existing x402 facilitator remains responsible for payment verification and
settlement. This keeps AP2 as the signed mandate/audit layer while x402 stays the
pluggable payment rail.

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