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* feat(realtime): EOU-driven semantic_vad turn detection Add a `semantic_vad` turn-detection mode to the realtime API that feeds the transcription model live and decides "the user finished speaking" from the `<EOU>` end-of-utterance token rather than from silence alone. When EOU fires the turn commits immediately (~0.3s); otherwise it falls back to an eagerness-scaled silence threshold (low/med/high = 8/4/2s). Plumbing, bottom to top: - proto: `AudioTranscriptionLive` bidirectional RPC (config-first oneof, mono float PCM @16k, ready-ack / Unimplemented degrade signal) plus `TranscriptResult.eou` for the unary retranscribe gate. - pkg/grpc: client/server/base/embed scaffolding for the bidi stream, modeled on AudioTransformStream; release stream conns on terminal Recv. - parakeet-cpp: live transcription RPC with per-C-call engine locking (one live stream per turn, finalize+free at commit); bump parakeet.cpp to ABI v5 — incremental StreamingMel (no more quadratic per-feed mel recompute that delayed EOU on long turns) and the <EOU>/<EOB> split; strip the literal <EOU>/<EOB> from offline text and set Eou. - core/backend: LiveTranscriptionSession wrapper + pipeline `turn_detection:` config block (type/eagerness/retranscribe). - realtime: semantic_vad integration — live input captions streamed as transcription deltas while the user speaks, EOU-immediate commit with eagerness fallback, optional retranscribe gate (batch re-decode must also end in <EOU> to confirm), clause synthesis off the LLM token callback, and per-turn live-transcription / model_load telemetry. - UI: show the realtime pipeline components as a vertical list. Docs and tests included; opt-in via the pipeline YAML or per-session `session.update`. Non-streaming STT backends degrade to silence-only. Assisted-by: Claude Code:claude-opus-4-8 [Read] [Edit] [Write] [Bash] Assisted-by: Claude Code:claude-fable-5 [Read] [Edit] [Bash] Signed-off-by: Richard Palethorpe <io@richiejp.com> * feat(realtime): explicit formally-verified state machines + parakeet streaming driver The realtime API had several implicit state machines whose state was inferred from scattered booleans, channels, and five separate mutexes, leaving illegal/inconsistent states reachable. Make them explicit and keep the implementation in step with a formal design; rework the parakeet streaming backend along the same lines. Realtime state machines (M1-M5). Each is a sealed sum-type State/Event/Effect with a total, pure Next(state,event)->(state,[]effect) behind a single-writer Coordinator: M1 conncoord connection lifecycle: VAD toggle + once-only teardown (replaces vadServerStarted + a `done` channel closed from two sites). M2 turncoord turn detection: collapses speechStarted and the live-stream "turn open" flag into one state, so discardTurn can no longer desync them and suppress the next onset. M3 respcoord response coordination: serializes the dual-writer start/cancel so at most one response is live; one response.done per response.create. M4 compactcoord conversation compaction: single-flight (replaces the `compacting atomic.Bool` CAS). M5 ttscoord TTS pipeline: open->closing->closed, idempotent wait(), rejects enqueue-after-close (was a silent drop). The Coordinator/Sink/Next plumbing — only the sealed types and Next differed per machine — is extracted once into core/http/endpoints/openai/coordinator as a generic Coordinator[S,E,F]; each machine keeps its public API via type aliases, so no sink, call-site, or test moved. Hierarchy. session_lifecycle.fizz models M1 as the parent region with its children (M2/M3/M4) as one statechart and asserts ChildrenDieWithParent (conn torn => all children terminal, none start after teardown). respcoord and compactcoord gain an absorbing Terminated state + Shutdown event; conncoord's teardown drives the children terminal. This closes a compaction teardown gap: a fire-and-forget compaction could outlive a torn session — compactionSink now takes a session-scoped cancellable context + WaitGroup and joins the in-flight summarize+evict on shutdown. Formal verification. formal-verification/ holds one authoritative FizzBee spec per machine plus the composition spec, each with an always-assertion and a documented one-line edit that makes the checker fail (verified non-vacuous). scripts/realtime-conformance.sh is fail-closed: all Go conformance suites under -race AND a model-check of every .fizz spec; a missing FizzBee is a hard error (only the loud REALTIME_CONFORMANCE_SKIP_FIZZBEE=1 bypasses it, never in CI). FizzBee is pinned by sha256 and installed via scripts/install-fizzbee.sh into .tools/ (gitignored). Wired as make test-realtime-conformance, a CI workflow, and a pre-commit path filter. Go conformance tests are Ginkgo/Gomega (per the repo's forbidigo lint): transition tables + fixed-seed property walks + concurrent/-race specs, no rapid dependency. Design map: docs/design/realtime-state-machines.md. Parakeet streaming backend. The same treatment applied to the parakeet-cpp streaming paths: - AudioTranscriptionStream returns codes.Unimplemented for non-streaming models instead of decoding offline and emitting it as one delta + final. A client that asked for streaming learns the model cannot stream rather than receiving a batch result shaped like a stream. New grpcerrors.StreamTranscriptionUnsupported carries that signal; the HTTP /v1/audio/transcriptions stream path surfaces it as an SSE error event. Mirrors AudioTranscriptionLive, which already did this. - utteranceBoundary (boundary.go): a single definition of the end-of-utterance latch, replacing three open-coded finalEou toggles. Modelled as a two-valued type so illegal states are unrepresentable. - Shared decode driver (driver.go): streamFeedResult (one per-feed event) + feedChunk (hides the ABI v4 JSON vs text-only split) + feedSlices + flushTail. The feed loop is written once. - AudioTranscriptionLive becomes a bidi adapter: it streams the per-feed {delta,eou,eob,words} the realtime turn detector consumes and a terminal FinalResult carrying only Text. Segments/duration/eou are offline-only and no longer produced (nor read) on the live path; liveTraceState drops the terminal eou and keeps the per-feed eou_events count. - AudioTranscriptionStream + streamJSON merge into one driver-based function; streamSegmenter is generalized to the unified event with a text-only fallback that preserves the legacy (no-words) library's per-utterance segmentation. Verified: build/vet/gofumpt clean, golangci-lint 0 issues, all coordinator and parakeet packages under -race, the fail-closed conformance gate green, and make test-realtime (12 e2e WS+WebRTC). Assisted-by: Claude:claude-opus-4-8 [Claude Code] Signed-off-by: Richard Palethorpe <io@richiejp.com> --------- Signed-off-by: Richard Palethorpe <io@richiejp.com>
215 lines
6.8 KiB
Go
215 lines
6.8 KiB
Go
package backend
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import (
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"context"
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"fmt"
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"maps"
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"time"
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"github.com/mudler/LocalAI/core/config"
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"github.com/mudler/LocalAI/core/schema"
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"github.com/mudler/LocalAI/core/trace"
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grpcPkg "github.com/mudler/LocalAI/pkg/grpc"
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"github.com/mudler/LocalAI/pkg/grpc/proto"
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"github.com/mudler/LocalAI/pkg/model"
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)
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// TranscriptionRequest groups the parameters accepted by ModelTranscription.
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// Use this so callers don't have to pass long positional arg lists when they
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// only care about a subset of fields.
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type TranscriptionRequest struct {
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Audio string
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Language string
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Translate bool
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Diarize bool
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Prompt string
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Temperature float32
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TimestampGranularities []string
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}
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func (r *TranscriptionRequest) toProto(threads uint32) *proto.TranscriptRequest {
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return &proto.TranscriptRequest{
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Dst: r.Audio,
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Language: r.Language,
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Translate: r.Translate,
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Diarize: r.Diarize,
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Threads: threads,
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Prompt: r.Prompt,
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Temperature: r.Temperature,
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TimestampGranularities: r.TimestampGranularities,
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}
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}
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func loadTranscriptionModel(ctx context.Context, ml *model.ModelLoader, modelConfig config.ModelConfig, appConfig *config.ApplicationConfig) (grpcPkg.Backend, error) {
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if modelConfig.Backend == "" {
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modelConfig.Backend = model.WhisperBackend
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}
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// model.WithContext(ctx) overrides the app-context default set in
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// ModelOptions so distributed routing decisions reach the request's
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// X-LocalAI-Node holder via distributedhdr.Stamp.
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opts := ModelOptions(modelConfig, appConfig, model.WithContext(ctx))
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transcriptionModel, err := ml.Load(opts...)
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if err != nil {
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recordModelLoadFailure(appConfig, modelConfig.Name, modelConfig.Backend, err, nil)
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return nil, err
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}
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if transcriptionModel == nil {
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return nil, fmt.Errorf("could not load transcription model")
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}
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return transcriptionModel, nil
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}
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func ModelTranscription(ctx context.Context, audio, language string, translate, diarize bool, prompt string, ml *model.ModelLoader, modelConfig config.ModelConfig, appConfig *config.ApplicationConfig) (*schema.TranscriptionResult, error) {
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return ModelTranscriptionWithOptions(ctx, TranscriptionRequest{
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Audio: audio,
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Language: language,
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Translate: translate,
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Diarize: diarize,
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Prompt: prompt,
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}, ml, modelConfig, appConfig)
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}
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func ModelTranscriptionWithOptions(ctx context.Context, req TranscriptionRequest, ml *model.ModelLoader, modelConfig config.ModelConfig, appConfig *config.ApplicationConfig) (*schema.TranscriptionResult, error) {
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transcriptionModel, err := loadTranscriptionModel(ctx, ml, modelConfig, appConfig)
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if err != nil {
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return nil, err
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}
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var startTime time.Time
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var audioSnippet map[string]any
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if appConfig.EnableTracing {
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trace.InitBackendTracingIfEnabled(appConfig.TracingMaxItems, appConfig.TracingMaxBodyBytes)
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startTime = time.Now()
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// Capture audio before the backend call — the backend may delete the file.
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audioSnippet = trace.AudioSnippet(req.Audio, appConfig.TracingMaxBodyBytes)
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}
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r, err := transcriptionModel.AudioTranscription(ctx, req.toProto(uint32(*modelConfig.Threads)))
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if err != nil {
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if appConfig.EnableTracing {
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errData := map[string]any{
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"audio_file": req.Audio,
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"language": req.Language,
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"translate": req.Translate,
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"diarize": req.Diarize,
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"prompt": req.Prompt,
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}
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if audioSnippet != nil {
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maps.Copy(errData, audioSnippet)
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}
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trace.RecordBackendTrace(trace.BackendTrace{
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Timestamp: startTime,
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Duration: time.Since(startTime),
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Type: trace.BackendTraceTranscription,
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ModelName: modelConfig.Name,
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Backend: modelConfig.Backend,
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Summary: trace.TruncateString(req.Audio, 200),
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Error: err.Error(),
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Data: errData,
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})
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}
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return nil, err
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}
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tr := transcriptResultFromProto(r)
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if appConfig.EnableTracing {
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data := map[string]any{
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"audio_file": req.Audio,
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"language": req.Language,
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"translate": req.Translate,
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"diarize": req.Diarize,
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"prompt": req.Prompt,
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"result_text": tr.Text,
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"segments_count": len(tr.Segments),
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}
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if audioSnippet != nil {
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maps.Copy(data, audioSnippet)
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}
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trace.RecordBackendTrace(trace.BackendTrace{
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Timestamp: startTime,
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Duration: time.Since(startTime),
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Type: trace.BackendTraceTranscription,
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ModelName: modelConfig.Name,
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Backend: modelConfig.Backend,
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Summary: trace.TruncateString(req.Audio+" -> "+tr.Text, 200),
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Data: data,
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})
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}
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return tr, err
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}
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// TranscriptionStreamChunk is a streaming event emitted by
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// ModelTranscriptionStream. Either Delta carries an incremental text fragment,
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// or Final carries the completed transcription as the very last event.
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type TranscriptionStreamChunk struct {
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Delta string
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Final *schema.TranscriptionResult
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}
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// ModelTranscriptionStream runs the gRPC streaming transcription RPC and
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// invokes onChunk for each event the backend produces. Backends that don't
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// support real streaming should still emit one terminal event with Final set,
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// which the HTTP layer turns into a single delta + done SSE pair.
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func ModelTranscriptionStream(ctx context.Context, req TranscriptionRequest, ml *model.ModelLoader, modelConfig config.ModelConfig, appConfig *config.ApplicationConfig, onChunk func(TranscriptionStreamChunk)) error {
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transcriptionModel, err := loadTranscriptionModel(ctx, ml, modelConfig, appConfig)
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if err != nil {
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return err
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}
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pbReq := req.toProto(uint32(*modelConfig.Threads))
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pbReq.Stream = true
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return transcriptionModel.AudioTranscriptionStream(ctx, pbReq, func(chunk *proto.TranscriptStreamResponse) {
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if chunk == nil {
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return
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}
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out := TranscriptionStreamChunk{Delta: chunk.Delta}
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if chunk.FinalResult != nil {
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out.Final = transcriptResultFromProto(chunk.FinalResult)
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}
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onChunk(out)
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})
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}
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func transcriptResultFromProto(r *proto.TranscriptResult) *schema.TranscriptionResult {
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if r == nil {
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return &schema.TranscriptionResult{}
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}
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tr := &schema.TranscriptionResult{
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Text: r.Text,
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Language: r.Language,
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Duration: float64(r.Duration),
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Eou: r.Eou,
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}
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for _, s := range r.Segments {
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var tks []int
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for _, t := range s.Tokens {
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tks = append(tks, int(t))
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}
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var words []schema.TranscriptionWord
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for _, w := range s.Words {
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var word = schema.TranscriptionWord{
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Start: time.Duration(w.Start),
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End: time.Duration(w.End),
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Text: w.Text,
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}
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words = append(words, word)
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tr.Words = append(tr.Words, word)
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}
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tr.Segments = append(tr.Segments,
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schema.TranscriptionSegment{
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Text: s.Text,
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Id: int(s.Id),
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Start: time.Duration(s.Start),
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End: time.Duration(s.End),
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Tokens: tks,
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Speaker: s.Speaker,
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Words: words,
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})
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}
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return tr
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}
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