467 lines
16 KiB
Go
467 lines
16 KiB
Go
package model
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import (
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"context"
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"errors"
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"fmt"
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"os"
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"strings"
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"time"
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grpc "github.com/mudler/LocalAI/pkg/grpc"
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pb "github.com/mudler/LocalAI/pkg/grpc/proto"
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"github.com/mudler/xlog"
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"github.com/phayes/freeport"
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"google.golang.org/protobuf/proto"
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)
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const (
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LLamaCPP = "llama-cpp"
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IKLLamaCPP = "ik-llama-cpp"
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)
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var Aliases = map[string]string{
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"go-llama": LLamaCPP,
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"llama": LLamaCPP,
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"ik_llama": IKLLamaCPP,
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"ik-llama": IKLLamaCPP,
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"embedded-store": LocalStoreBackend,
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"huggingface-embeddings": TransformersBackend,
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"transformers-musicgen": TransformersBackend,
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"sentencetransformers": TransformersBackend,
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"mamba": TransformersBackend,
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"stablediffusion": StableDiffusionGGMLBackend,
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}
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var TypeAlias = map[string]string{
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"sentencetransformers": "SentenceTransformer",
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"huggingface-embeddings": "SentenceTransformer",
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"mamba": "Mamba",
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"transformers-musicgen": "MusicgenForConditionalGeneration",
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}
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const (
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WhisperBackend = "whisper"
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StableDiffusionGGMLBackend = "stablediffusion-ggml"
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TransformersBackend = "transformers"
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LocalStoreBackend = "local-store"
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)
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// starts the grpcModelProcess for the backend, and returns a grpc client
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// It also loads the model
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func (ml *ModelLoader) grpcModel(backend string, o *Options) func(string, string, string) (*Model, error) {
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return func(modelID, modelName, modelFile string) (*Model, error) {
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xlog.Debug("Loading Model with gRPC", "modelID", modelID, "file", modelFile, "backend", backend, "options", *o)
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// Distributed mode: delegate to the model router if set. No load
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// event is emitted here: this branch runs per inference request and
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// the actual load happens on the worker node.
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ml.mu.Lock()
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router := ml.modelRouter
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ml.mu.Unlock()
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if router != nil {
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xlog.Info("Routing model to remote node via ModelRouter", "modelID", modelID, "backend", backend)
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return router(o.context, backend, modelID, modelName, modelFile, o.gRPCOptions, o.parallelRequests)
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}
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uri := ml.GetAllExternalBackends(o)[backend]
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start := time.Now()
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m, err := ml.spawnGRPCModel(backend, uri, o, modelID, modelName, modelFile)
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ml.notifyLoadObserver(BackendLoadEvent{
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ModelID: modelID,
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ModelName: modelName,
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Backend: backend,
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BackendURI: uri,
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Duration: time.Since(start),
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Err: err,
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})
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return m, err
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}
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}
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// spawnGRPCModel starts the backend process (or attaches to a remote
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// address), waits for it to come up, and issues the LoadModel RPC. Reached
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// only for actual loads: LoadModel resolves cache hits and coalesces
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// concurrent loads before invoking the grpcModel closure. uri is the
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// resolved external-backend runtime (empty when the backend isn't
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// registered).
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func (ml *ModelLoader) spawnGRPCModel(backend, uri string, o *Options, modelID, modelName, modelFile string) (*Model, error) {
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var client *Model
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getFreeAddress := func() (string, error) {
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port, err := freeport.GetFreePort()
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if err != nil {
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return "", fmt.Errorf("failed allocating free ports: %s", err.Error())
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}
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return fmt.Sprintf("127.0.0.1:%d", port), nil
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}
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// If no specific model path is set for transformers/HF, set it to the model path
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for _, env := range []string{"HF_HOME", "TRANSFORMERS_CACHE", "HUGGINGFACE_HUB_CACHE"} {
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if os.Getenv(env) == "" {
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err := os.Setenv(env, ml.ModelPath)
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if err != nil {
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xlog.Error("unable to set environment variable to modelPath", "error", err, "name", env, "modelPath", ml.ModelPath)
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}
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}
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}
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// Check if the backend is provided as external
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if uri != "" {
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xlog.Debug("Loading external backend", "uri", uri)
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// check if uri is a file or an address
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if fi, err := os.Stat(uri); err == nil {
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xlog.Debug("external backend is file", "file", fi)
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serverAddress, err := getFreeAddress()
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if err != nil {
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return nil, fmt.Errorf("failed allocating free ports: %s", err.Error())
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}
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// Make sure the process is executable
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process, err := ml.startProcess(uri, modelID, serverAddress)
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if err != nil {
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xlog.Error("failed to launch", "error", err, "path", uri)
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return nil, err
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}
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xlog.Debug("GRPC Service Started")
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client = NewModel(modelID, serverAddress, process)
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} else {
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xlog.Debug("external backend is a uri")
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// address
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client = NewModel(modelID, uri, nil)
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}
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} else {
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xlog.Error("Backend not found", "backend", backend)
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return nil, fmt.Errorf("backend not found: %s", backend)
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}
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xlog.Debug("Wait for the service to start up")
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xlog.Debug("Options", "options", o.gRPCOptions)
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// Wait for the service to start up
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ready := false
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for i := range o.grpcAttempts {
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alive, err := client.GRPC(o.parallelRequests, ml.wd).HealthCheck(context.Background())
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if alive {
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xlog.Debug("GRPC Service Ready")
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ready = true
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break
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}
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if err != nil && i == o.grpcAttempts-1 {
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xlog.Error("failed starting/connecting to the gRPC service", "error", err)
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}
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time.Sleep(time.Duration(o.grpcAttemptsDelay) * time.Second)
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}
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if !ready {
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xlog.Debug("GRPC Service NOT ready")
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stopLoadProcess(client, modelID)
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return nil, fmt.Errorf("grpc service not ready")
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}
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// Clone before setting the per-load fields: o.gRPCOptions is shared by
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// retried/auto-discovery attempts, and a plain struct copy would copy
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// the protobuf message's internal mutex.
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options := proto.Clone(o.gRPCOptions).(*pb.ModelOptions)
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options.Model = modelName
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options.ModelFile = modelFile
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options.ModelPath = ml.ModelPath
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xlog.Debug("GRPC: Loading model with options", "options", options)
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res, err := client.GRPC(o.parallelRequests, ml.wd).LoadModel(o.context, options)
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if err != nil {
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stopLoadProcess(client, modelID)
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return nil, fmt.Errorf("could not load model: %w", err)
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}
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if !res.Success {
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stopLoadProcess(client, modelID)
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return nil, fmt.Errorf("could not load model (no success): %s", res.Message)
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}
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// Register size for size-aware eviction using the caller-supplied estimate
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// (computed via pkg/vram, which handles multi-file and non-GGUF models).
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if ml.wd != nil && o.modelSizeBytes > 0 {
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ml.wd.RegisterModelSize(modelID, o.modelSizeBytes)
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}
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return client, nil
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}
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// stopLoadProcess tears down a backend process whose load did not complete.
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// The stop error is only logged: the load error is what the caller reports.
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func stopLoadProcess(client *Model, modelID string) {
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process := client.Process()
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if process == nil {
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return
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}
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if err := process.Stop(); err != nil {
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xlog.Warn("failed to stop backend process after failed load", "error", err, "modelID", modelID)
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}
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}
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// parallelSlotsFromOptions returns the effective n_parallel from the backend
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// option strings ("parallel:N" / "n_parallel:N"), or "1" when unset — the
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// llama.cpp default. Used only for the effective-tuning load log.
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func parallelSlotsFromOptions(opts []string) string {
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for _, o := range opts {
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k, v, ok := strings.Cut(o, ":")
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if ok && (k == "parallel" || k == "n_parallel") {
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return strings.TrimSpace(v)
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}
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}
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return "1"
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}
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func (ml *ModelLoader) backendLoader(opts ...Option) (client grpc.Backend, err error) {
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o := NewOptions(opts...)
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xlog.Info("BackendLoader starting", "modelID", o.modelID, "backend", o.backendString, "model", o.model)
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// Surface the effective performance-relevant runtime options at load (some of
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// these are auto-tuned for the detected hardware). Logged once per load so an
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// admin can see what will actually run and pin or override any value in the
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// model YAML — or set LOCALAI_DISABLE_HARDWARE_DEFAULTS=true to turn the
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// hardware auto-tuning off entirely. Gated on an LLM-ish load (context set) so
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// TTS/audio/other backends stay quiet.
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if opt := o.gRPCOptions; opt != nil && opt.ContextSize > 0 {
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xlog.Info("effective runtime tuning (override in the model YAML; LOCALAI_DISABLE_HARDWARE_DEFAULTS=true disables hardware auto-tuning)",
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"modelID", o.modelID,
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"context", opt.ContextSize,
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"n_batch", opt.NBatch,
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"n_gpu_layers", opt.NGPULayers,
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"parallel", parallelSlotsFromOptions(opt.Options),
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"flash_attention", opt.FlashAttention,
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"f16", opt.F16Memory)
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}
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backend := strings.ToLower(o.backendString)
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if realBackend, exists := Aliases[backend]; exists {
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typeAlias, exists := TypeAlias[backend]
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if exists {
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xlog.Debug("alias is a type alias", "alias", backend, "realBackend", realBackend, "type", typeAlias)
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o.gRPCOptions.Type = typeAlias
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} else {
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xlog.Debug("alias", "alias", backend, "realBackend", realBackend)
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}
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backend = realBackend
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}
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model, err := ml.LoadModel(o.modelID, o.model, ml.grpcModel(backend, o))
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if err != nil {
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// Defensive cleanup: the model usually wasn't registered yet (LoadModel
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// failed before that), so StopGRPC reporting "model not found" is the
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// expected case, not an error. The outer Failed-to-load log below
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// carries the real reason.
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if stopErr := ml.StopGRPC(only(o.modelID)); stopErr != nil {
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xlog.Debug("cleanup stop after failed load", "error", stopErr, "model", o.modelID)
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}
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xlog.Error("Failed to load model", "modelID", o.modelID, "error", err, "backend", o.backendString)
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return nil, err
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}
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return model.GRPC(o.parallelRequests, ml.wd), nil
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}
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// retryEnforce repeatedly invokes fn until it returns NeedMore=false or the
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// retry budget is exhausted. It sleeps `retryInterval` between attempts and
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// logs progress under `label`. Used by both LRU and group-exclusivity
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// enforcement so the busy-model wait behaviour is identical.
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func retryEnforce(fn func() EnforceLRULimitResult, maxRetries int, retryInterval time.Duration, label string) {
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for attempt := range maxRetries {
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result := fn()
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if !result.NeedMore {
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if result.EvictedCount > 0 {
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xlog.Info("[ModelLoader] "+label+" enforcement complete", "evicted", result.EvictedCount)
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}
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return
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}
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if attempt < maxRetries-1 {
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xlog.Info("[ModelLoader] Waiting for busy models to become idle before eviction",
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"label", label,
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"evicted", result.EvictedCount,
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"attempt", attempt+1,
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"maxRetries", maxRetries,
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"retryIn", retryInterval)
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time.Sleep(retryInterval)
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} else {
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xlog.Warn("[ModelLoader] "+label+" enforcement incomplete after max retries",
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"evicted", result.EvictedCount,
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"reason", "conflicts are still busy or pinned")
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}
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}
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}
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// enforceLRULimit enforces the LRU limit before loading a new model.
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// This is called before loading a model to ensure we don't exceed the limit.
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// It accounts for models that are currently being loaded by other goroutines.
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// If models are busy and can't be evicted, it will wait and retry until space is available.
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func (ml *ModelLoader) enforceLRULimit() {
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if ml.wd == nil {
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return
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}
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pendingLoads := ml.GetLoadingCount()
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ml.mu.Lock()
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maxRetries := ml.lruEvictionMaxRetries
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retryInterval := ml.lruEvictionRetryInterval
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ml.mu.Unlock()
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retryEnforce(func() EnforceLRULimitResult {
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return ml.wd.EnforceLRULimit(pendingLoads)
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}, maxRetries, retryInterval, "LRU")
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}
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// enforceGroupExclusivity evicts every loaded model that shares a concurrency
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// group with modelID before loading proceeds. Reuses the LRU retry settings so
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// busy conflicts wait for the same window as a busy LRU eviction.
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func (ml *ModelLoader) enforceGroupExclusivity(modelID string) {
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if ml.wd == nil {
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return
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}
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ml.mu.Lock()
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maxRetries := ml.lruEvictionMaxRetries
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retryInterval := ml.lruEvictionRetryInterval
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ml.mu.Unlock()
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retryEnforce(func() EnforceLRULimitResult {
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return ml.wd.EnforceGroupExclusivity(modelID)
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}, maxRetries, retryInterval, "group-exclusivity")
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}
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// updateModelLastUsed updates the last used time for a model (for LRU tracking)
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func (ml *ModelLoader) updateModelLastUsed(m *Model) {
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if ml.wd == nil || m == nil {
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return
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}
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ml.wd.UpdateLastUsed(m.address)
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}
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func (ml *ModelLoader) Load(opts ...Option) (grpc.Backend, error) {
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o := NewOptions(opts...)
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ml.mu.Lock()
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distributed := ml.modelRouter != nil
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ml.mu.Unlock()
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// In distributed mode, SmartRouter must run per inference request so
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// PickBestReplica (core/services/nodes/replicapicker.go) picks the
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// least-loaded replica each time. Bypass the local cache and the local
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// LRU / concurrency-group watchdog enforcement: both are scoped to the
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// in-process Model store, which in distributed mode only holds stubs for
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// remote replicas. SmartRouter handles cluster-wide eviction
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// (evictLRUAndFreeNode) and concurrency-group anti-affinity
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// (narrowByGroupAntiAffinity) at the scheduler layer.
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//
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// TODO(distributed-cache): see LoadModel for the rotating-replica-cache
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// integration point that would let hot paths skip the per-request DB
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// round-trip without giving up the shared PickBestReplica policy.
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if distributed {
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client, err := ml.backendLoader(opts...)
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if err != nil {
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return nil, err
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}
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if m := ml.CheckIsLoaded(o.modelID); m != nil && m.Process() == nil {
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client = newConnectionEvictingClient(client, o.modelID, func() {
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if err := ml.ShutdownModel(o.modelID); err != nil {
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xlog.Warn("Failed to shut down remote model after connection error", "model", o.modelID, "error", err)
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}
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})
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}
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return client, nil
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}
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// Return earlier if we have a model already loaded
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// (avoid looping through all the backends)
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if m := ml.CheckIsLoaded(o.modelID); m != nil {
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xlog.Debug("Model already loaded", "model", o.modelID)
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// Update last used time for LRU tracking
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ml.updateModelLastUsed(m)
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client := m.GRPC(o.parallelRequests, ml.wd)
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// Wrap remote models so connection errors during inference trigger eviction
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if m.Process() == nil {
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client = newConnectionEvictingClient(client, o.modelID, func() {
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ml.ShutdownModel(o.modelID)
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})
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}
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return client, nil
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}
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// Evict any loaded model that shares a concurrency group with the
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// requested one before applying the global LRU cap — group eviction may
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// already make room, and otherwise LRU might evict an unrelated model
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// only for the group check to immediately evict another.
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ml.enforceGroupExclusivity(o.modelID)
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// Enforce LRU limit before loading a new model
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ml.enforceLRULimit()
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// if a backend is defined, return the loader directly
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if o.backendString != "" {
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client, err := ml.backendLoader(opts...)
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if err != nil {
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return nil, err
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}
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// Wrap remote models so connection errors during inference trigger eviction
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if m := ml.CheckIsLoaded(o.modelID); m != nil && m.Process() == nil {
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client = newConnectionEvictingClient(client, o.modelID, func() {
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ml.ShutdownModel(o.modelID)
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})
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}
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return client, nil
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}
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// Otherwise scan for backends in the asset directory
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var err error
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// get backends embedded in the binary
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autoLoadBackends := []string{}
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// append externalBackends supplied by the user via the CLI
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for b := range ml.GetAllExternalBackends(o) {
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autoLoadBackends = append(autoLoadBackends, b)
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}
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if len(autoLoadBackends) == 0 {
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xlog.Error("No backends found")
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return nil, fmt.Errorf("no backends found")
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}
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xlog.Debug("Loading from the following backends (in order)", "backends", autoLoadBackends)
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xlog.Info("Trying to load the model", "modelID", o.modelID, "backends", autoLoadBackends)
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for _, key := range autoLoadBackends {
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xlog.Info("Attempting to load", "backend", key)
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options := append(opts, []Option{
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WithBackendString(key),
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}...)
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model, modelerr := ml.backendLoader(options...)
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if modelerr == nil && model != nil {
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xlog.Info("Loads OK", "backend", key)
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// Wrap remote models so connection errors during inference trigger eviction
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if m := ml.CheckIsLoaded(o.modelID); m != nil && m.Process() == nil {
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model = newConnectionEvictingClient(model, o.modelID, func() {
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ml.ShutdownModel(o.modelID)
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})
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}
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return model, nil
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} else if modelerr != nil {
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err = errors.Join(err, fmt.Errorf("[%s]: %w", key, modelerr))
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xlog.Info("Fails", "backend", key, "error", modelerr.Error())
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} else if model == nil {
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err = errors.Join(err, fmt.Errorf("backend %s returned no usable model", key))
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xlog.Info("Fails", "backend", key, "error", "backend returned no usable model")
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}
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}
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return nil, fmt.Errorf("could not load model - all backends returned error: %s", err.Error())
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}
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