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222 lines
7.6 KiB
Python
222 lines
7.6 KiB
Python
"""Tests for MoA aggregator streaming.
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MoAChatCompletions.create() honors stream=True by running the references first
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and then returning the aggregator's raw streaming iterator (from call_llm), so
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the acting model's output can stream to the user. stream=False is the original
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complete-response path and must stay byte-identical.
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"""
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from types import SimpleNamespace
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import pytest
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def _response(content="done", *, tool_calls=None):
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message = SimpleNamespace(content=content, tool_calls=tool_calls or [])
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choice = SimpleNamespace(message=message, finish_reason="stop")
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return SimpleNamespace(choices=[choice], usage=None, model="fake-model")
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def _write_cfg(home):
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home.mkdir()
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(home / "config.yaml").write_text(
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"""
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moa:
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default_preset: review
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presets:
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review:
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reference_models:
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- provider: openai-codex
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model: gpt-5.5
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aggregator:
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provider: openrouter
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model: anthropic/claude-opus-4.8
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""".strip(),
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encoding="utf-8",
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)
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def _facade(monkeypatch, tmp_path, on_call=None):
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home = tmp_path / ".hermes"
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_write_cfg(home)
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monkeypatch.setenv("HERMES_HOME", str(home))
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calls = []
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def fake_call_llm(**kwargs):
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calls.append(kwargs)
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if on_call is not None:
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r = on_call(kwargs)
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if r is not None:
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return r
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if kwargs["task"] == "moa_reference":
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return _response("reference advice")
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return _response("aggregator acted")
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monkeypatch.setattr("agent.moa_loop.call_llm", fake_call_llm)
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from agent.moa_loop import MoAChatCompletions
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return MoAChatCompletions("review"), calls
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# --------------------------------------------------------------------------
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# Facade-level: create() stream branch
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# --------------------------------------------------------------------------
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def test_create_streams_aggregator_when_requested(monkeypatch, tmp_path):
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"""stream=True: references still run, aggregator is called with stream=True
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and stream_options, and create() returns the aggregator call's result
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(the raw stream) verbatim."""
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sentinel = object()
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def on_call(kwargs):
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if kwargs["task"] == "moa_aggregator":
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return sentinel
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return None
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facade, calls = _facade(monkeypatch, tmp_path, on_call=on_call)
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out = facade.create(
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messages=[{"role": "user", "content": "q"}],
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tools=[{"type": "function"}],
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stream=True,
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)
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# create() returns the aggregator's streaming result untouched.
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assert out is sentinel
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# References still ran (MoA not bypassed).
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assert any(c["task"] == "moa_reference" for c in calls)
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agg = next(c for c in calls if c["task"] == "moa_aggregator")
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assert agg["stream"] is True
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assert agg["stream_options"] == {"include_usage": True}
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# Tools still flow to the (streaming) aggregator.
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assert agg["tools"] is not None
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def test_create_non_stream_path_unchanged(monkeypatch, tmp_path):
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"""Default (no stream): the aggregator call carries NO stream/stream_options
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keys, so the non-streaming path is byte-identical to before."""
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facade, calls = _facade(monkeypatch, tmp_path)
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facade.create(messages=[{"role": "user", "content": "q"}], tools=[])
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agg = next(c for c in calls if c["task"] == "moa_aggregator")
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assert "stream" not in agg
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assert "stream_options" not in agg
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assert "timeout" not in agg
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def test_create_forwards_stream_read_timeout(monkeypatch, tmp_path):
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"""The consumer's per-request (stream read) timeout is forwarded to the
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aggregator so it actually governs the stream."""
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timeout_sentinel = object()
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facade, calls = _facade(monkeypatch, tmp_path)
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facade.create(
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messages=[{"role": "user", "content": "q"}],
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tools=[],
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stream=True,
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timeout=timeout_sentinel,
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)
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agg = next(c for c in calls if c["task"] == "moa_aggregator")
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assert agg["timeout"] is timeout_sentinel
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def test_create_respects_caller_stream_options(monkeypatch, tmp_path):
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"""A caller-provided stream_options is forwarded as-is (not overwritten)."""
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facade, calls = _facade(monkeypatch, tmp_path)
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facade.create(
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messages=[{"role": "user", "content": "q"}],
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tools=[],
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stream=True,
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stream_options={"include_usage": False, "extra": 1},
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)
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agg = next(c for c in calls if c["task"] == "moa_aggregator")
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assert agg["stream_options"] == {"include_usage": False, "extra": 1}
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def test_create_does_not_forward_timeout_when_not_streaming(monkeypatch, tmp_path):
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"""A stray timeout on a non-streaming call is NOT forwarded — the non-stream
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path must remain unchanged regardless of incidental kwargs."""
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facade, calls = _facade(monkeypatch, tmp_path)
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facade.create(messages=[{"role": "user", "content": "q"}], tools=[], timeout=object())
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agg = next(c for c in calls if c["task"] == "moa_aggregator")
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assert "timeout" not in agg
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assert "stream" not in agg
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# --------------------------------------------------------------------------
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# call_llm-level: stream branch returns the raw SDK stream
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# --------------------------------------------------------------------------
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def test_call_llm_stream_returns_raw_stream_and_skips_validation(monkeypatch):
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"""call_llm(stream=True) returns the client's raw stream object directly,
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attaches stream/stream_options to the request, and does NOT run response
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validation (which assumes a complete response)."""
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from agent import auxiliary_client as ac
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captured = {}
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class _Completions:
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def create(self, **kwargs):
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captured.update(kwargs)
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return "RAW_STREAM"
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fake_client = SimpleNamespace(
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chat=SimpleNamespace(completions=_Completions()),
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base_url="http://localhost:8001/v1",
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)
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monkeypatch.setattr(
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ac, "_resolve_task_provider_model",
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lambda *a, **k: ("custom", "m", "http://localhost:8001/v1", "key", "chat_completions"),
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)
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monkeypatch.setattr(ac, "_get_cached_client", lambda *a, **k: (fake_client, "m"))
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def _no_validate(*a, **k):
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raise AssertionError("streaming must not go through _validate_llm_response")
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monkeypatch.setattr(ac, "_validate_llm_response", _no_validate)
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out = ac.call_llm(
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provider="custom",
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model="m",
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messages=[{"role": "user", "content": "hi"}],
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stream=True,
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stream_options={"include_usage": True},
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)
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assert out == "RAW_STREAM"
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assert captured.get("stream") is True
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assert captured.get("stream_options") == {"include_usage": True}
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def test_call_llm_non_stream_still_validates(monkeypatch):
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"""Sanity: stream=False keeps the validated path (regression guard for the
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early-return not leaking into normal calls)."""
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from agent import auxiliary_client as ac
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class _Completions:
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def create(self, **kwargs):
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return _response("ok")
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fake_client = SimpleNamespace(
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chat=SimpleNamespace(completions=_Completions()),
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base_url="http://localhost:8001/v1",
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)
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monkeypatch.setattr(
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ac, "_resolve_task_provider_model",
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lambda *a, **k: ("custom", "m", "http://localhost:8001/v1", "key", "chat_completions"),
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)
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monkeypatch.setattr(ac, "_get_cached_client", lambda *a, **k: (fake_client, "m"))
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validated = {"called": False}
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def _validate(resp, task):
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validated["called"] = True
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return resp
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monkeypatch.setattr(ac, "_validate_llm_response", _validate)
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ac.call_llm(
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provider="custom",
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model="m",
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messages=[{"role": "user", "content": "hi"}],
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)
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assert validated["called"] is True
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