Files
ragflow/internal/ingestion/task/pipeline_executor.go
Jack 8546eb62bf Feat(ingestion): add canvas pipeline debug (dry-run) mode with View result log (#17538)
## Summary
Adds a side-effect-free DataFlow canvas **debug (dry-run) mode** plus a
**debug run log with a "View result" panel**, so a canvas can be
executed synchronously and inspected end-to-end (per-component progress
and parsed chunks) without persisting anything.

### Dry-run execution (inline parsed chunks)
- `task/debug.go`: `NewDebugTaskContext` builds an in-memory
`TaskContext` with **`KB.ID == ""` — the single debug signal used across
the ingestion pipeline**. A canvas debug run has no knowledgebase, and
production ingestion always supplies one, so `kb_id == ""` occurs ONLY
in debug mode. Components gate their own side effects on this signal
without any dedicated debug vocabulary (the former `CANVAS_DEBUG_DOC_ID`
marker constant is removed).
- `task/pipeline_executor.go`: `validateTaskContext` no longer requires
a KB when `KB.ID == ""` (debug); debug runs return `collectDebugOutput`
(chunks) instead of a no-op; uploaded bytes are delivered as
`inputs['binary']` for doc-less runs; `injectDebugPageCap` caps the
parser to the first pages for a fast preview via the production
`override_params` channel (Parser cpnID + family).
- `component/tokenizer.go`: `shouldHaveEmbedding` skips embedding when
`kb_id == ""` — the embedder is configured on the knowledgebase, so a
debug run has nothing to resolve against and stays side-effect free.
- `chunker/register.go`: chunk images are uploaded to MinIO only when a
KB is present (persist run). **In debug mode the raw image bytes are
intentionally dropped (`delete(ck, "image")`)** — the debug preview does
not render chunk images, and dropping the bytes keeps them out of memory
and out of the Redis-stored debug log. This is a deliberate trade-off,
not an oversight.
- `component/file.go`: pass through in-memory binary bytes, skipping
`doc_id` -> storage resolution.
- `handler/agent.go` + `agent_webhook.go`: detect `dataflow_canvas` and
run a sync debug returning chunks inline on the existing
chat/completions endpoint; reject DataFlow canvases from webhooks (fixes
the previously dead `== "DataFlow"` check; mirrors Python
`agent_api.py`).
- `parser_dispatch.go`: export `ParserFileFamily` for the executor's
page-cap injection.

### Debug run log + "View result"
Mirrors Python's debug-log contract so the front-end can replay each
component's progress and parsed output:
- `task/debug_log_sink.go`: a `DebugLogSink` records every component's
lifecycle into a `[{component_id, trace}]` array (each trace entry
carries `message`, `progress`, `timestamp`, `elapsed_time`). `Flush`
appends a terminal `END` marker whose first trace message is non-empty
so the front-end detects completion. On failure the END marker is
prefixed `[ERROR]` yet still carries the run, so the failure timeline
renders instead of being stuck empty. Timestamps and `elapsed_time` are
in seconds (matching the rest of the app).
- `task/debug_result_dsl.go`: `BuildDebugResultDSL` builds the `dsl` the
END marker carries — the Go analogue of Python's `Graph.__str__` +
END-marker `dsl` in `rag/flow/pipeline.py`. It combines the static DSL
structure (component_name / downstream / params / graph.nodes) with the
run output map (`output["state"][<id>]`) to emit, per component,
`obj.params.outputs[<format>].value` (chunks / text / json / html /
markdown) — the exact keys the front-end `dataflow-result` page reads to
render each step's parsed chunks. Raw embedding vectors (including the
dimension-scoped `q_<dim>_vec` keys) are stripped so the stored log
stays Python-scale.
- `task/pipeline_executor.go`: after the run, attach the built `dsl` to
the END marker via the `ResultSink` capability.
- `handler/agent.go`: `runCanvasPipelineDebug` generates a stable
`message_id` up-front and always flushes the log (success or failure);
`respondWithDebugResult` returns `message_id` in **both** the success
and the error envelope so the front-end can poll the log. The debug-log
endpoint `GET /agents/:id/logs/:message_id` serves the array.
- `web/src/pages/agent/hooks/use-run-dataflow.ts`: on a run failure,
also surface `message_id` via `setMessageId` so the log sheet renders
the failure timeline (the `[ERROR]` END marker is already written).
Guarded by `if (msgId)`, so it is a safe no-op when the back-end does
not return an id.

## Behavioral notes
- Debug parses only the first pages (`debugPageCapPages`) for a fast
preview; an explicit `pages` cap already present in the ParserConfig is
respected.
- Debug mode does not keep chunk images (see above) and does not compute
embeddings — it exercises parse + chunk only.

## Test plan
- Go: `debug_test.go`, `debug_log_sink_test.go` (trace pairing, END
marker, `[ERROR]` prefix, fractional-second timestamp/elapsed_time, size
caps, and a real-pipeline test asserting the END-marker `dsl` carries
non-empty per-component `params.outputs` with chunks),
`debug_result_dsl_test.go` (flat and real nested `output["state"]`
shapes, vector stripping, format priority),
`debug_pages_integration_test.go`, `pipeline_executor_persist_test.go`,
`handler/agent_pipeline_debug_test.go`, `handler/agent_logs_test.go`
(incl. `TestRunCanvasPipelineDebug_ErrorStillExposesMessageID` /
`TestRespondWithDebugResult_ErrorCarriesMessageID` locking `message_id`
on failure), plus updates to `agent_test.go` / `agent_webhook_test.go` /
`chunker/image_upload_test.go` / `tokenizer*.go`.
- `go build ./...` and `./build.sh --test` for affected packages.

🤖 Generated with [CodeBuddy Code](https://cnb.cool/codebuddy)

---------

Co-authored-by: CodeBuddy Code <noreply@tencent.com>
2026-07-31 13:10:08 +08:00

590 lines
21 KiB
Go

//
// Copyright 2026 The InfiniFlow Authors. All Rights Reserved.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
//
package task
import (
"context"
"encoding/json"
"fmt"
"ragflow/internal/utility"
"strings"
"time"
"ragflow/internal/common"
"ragflow/internal/dao"
"ragflow/internal/engine"
"ragflow/internal/entity"
"ragflow/internal/ingestion/component"
"ragflow/internal/ingestion/knowledge_compile"
pipelinepkg "ragflow/internal/ingestion/pipeline"
"gorm.io/gorm"
)
// PipelineResult is the outcome of a pipeline run: chunks have been
// indexed, and these bookkeeping inputs remain for the caller to apply to
// document state (metadata merge + chunk/token counter bumps).
type PipelineResult struct {
DocID string
KbID string
Metadata map[string]any
Chunks []map[string]any // populated only in debug (dry-run) mode
ChunkCount int
TokenConsumption int
Duration float64 // pipeline wall-clock seconds
// MessageID is the polling key for the debug-run log. The front-end reads
// it from the run response and polls GET /agents/:id/logs/:message_id to
// render progress; it is empty for non-debug (persist) runs.
MessageID string
}
type PipelineExecutor struct {
taskCtx *TaskContext
canvasID string
docBulkSize int
indexWriter *chunkIndexWriter
logCreateFunc func(ctx context.Context, db *gorm.DB, log *entity.PipelineOperationLog) error
loadDSLFunc func(ctx context.Context, canvasID string) (string, string, error)
runPipelineFunc func(ctx context.Context, dsl string) (map[string]any, string, error)
progressSink pipelinepkg.ProgressSink
requireResume bool // when true, the pipeline run passes WithRequireResume
}
func validateTaskContext(taskCtx *TaskContext) error {
if taskCtx == nil {
return fmt.Errorf("pipeline executor: nil task context")
}
if taskCtx.Doc.ID == "" {
return fmt.Errorf("pipeline executor: empty document id")
}
// A debug (dry-run) context carries no knowledgebase (see
// TaskContext.IsDebug), so it must not be required to supply one.
if !taskCtx.IsDebug() && taskCtx.Doc.KbID == "" {
return fmt.Errorf("pipeline executor: empty document knowledgebase id")
}
if taskCtx.Doc.Name == nil || *taskCtx.Doc.Name == "" {
return fmt.Errorf("pipeline executor: empty document name")
}
if taskCtx.Tenant.ID == "" {
return fmt.Errorf("pipeline executor: empty tenant id")
}
return nil
}
func NewPipelineExecutor(
taskCtx *TaskContext,
canvasID string,
docBulkSize int,
) (*PipelineExecutor, error) {
if err := validateTaskContext(taskCtx); err != nil {
return nil, err
}
if strings.TrimSpace(canvasID) == "" {
return nil, fmt.Errorf("pipeline executor: empty canvas id")
}
svc := &PipelineExecutor{
taskCtx: taskCtx,
canvasID: canvasID,
docBulkSize: docBulkSize,
indexWriter: newChunkIndexWriter(
func(ctx context.Context, chunks []map[string]any, baseName string, datasetID string) ([]string, error) {
return engine.Get().InsertChunks(ctx, chunks, baseName, datasetID)
},
fmt.Sprintf("ragflow_%s", taskCtx.Tenant.ID),
taskCtx.Doc.KbID,
docBulkSize,
),
logCreateFunc: dao.NewPipelineOperationLogDAO().Create,
}
svc.loadDSLFunc = svc.loadDSLFromCanvas
svc.runPipelineFunc = svc.runPipelineWithDSL
return svc, nil
}
func (s *PipelineExecutor) WithInsertFunc(f InsertFunc) *PipelineExecutor {
s.indexWriter.insertFunc = f
return s
}
func (s *PipelineExecutor) WithLogCreateFunc(f func(ctx context.Context, db *gorm.DB, log *entity.PipelineOperationLog) error) *PipelineExecutor {
s.logCreateFunc = f
return s
}
func (s *PipelineExecutor) WithLoadDSLFunc(f func(ctx context.Context, canvasID string) (string, string, error)) *PipelineExecutor {
s.loadDSLFunc = f
return s
}
func (s *PipelineExecutor) WithRunPipelineFunc(f func(ctx context.Context, dsl string) (map[string]any, string, error)) *PipelineExecutor {
s.runPipelineFunc = f
return s
}
// WithProgressSink injects a sink that receives pipeline component progress
// events. The sink owns all document/ingestion_task_log persistence; when
// unset, the pipeline runs DB-independent (progress events are dropped).
func (s *PipelineExecutor) WithProgressSink(sink pipelinepkg.ProgressSink) *PipelineExecutor {
s.progressSink = sink
return s
}
// WithRequireResume makes the pipeline refuse to start when no checkpoint
// store is resolvable (Redis down or not configured). Production ingestion
// sets this; tests skip it so they can exercise runPlain without Redis.
func (s *PipelineExecutor) WithRequireResume() *PipelineExecutor {
s.requireResume = true
return s
}
func (s *PipelineExecutor) KB() *entity.Knowledgebase { return &s.taskCtx.KB }
func (s *PipelineExecutor) Doc() *entity.Document { return &s.taskCtx.Doc }
func (s *PipelineExecutor) Tenant() *entity.Tenant { return &s.taskCtx.Tenant }
func (s *PipelineExecutor) Execute(ctx context.Context) (*PipelineResult, error) {
start := time.Now()
if err := ctx.Err(); err != nil {
return nil, err
}
dsl, correctedID, err := s.loadDSLFunc(ctx, s.canvasID)
if err != nil {
return nil, err
}
if correctedID != "" {
s.canvasID = correctedID
}
pipelineOutput, pipelineDSL, err := s.runPipelineFunc(ctx, dsl)
if err != nil {
return nil, err
}
// A debug (dry-run) run produces no persistent side effect (no MinIO
// image upload, no index insert, no pipeline log); see TaskContext.IsDebug.
if s.taskCtx.IsDebug() {
return s.collectDebugOutput(ctx, pipelineOutput, start)
}
result, err := s.processOutput(ctx, pipelineOutput, start)
if err != nil {
return nil, err
}
if pipelineDSL != "" {
s.recordPipelineLog(ctx, dao.DB, s.taskCtx.Doc.ID, pipelineDSL, "done")
}
return result, nil
}
// collectDebugOutput builds a PipelineResult for a debug (dry-run) run.
// It surfaces the pipeline's chunks so a debug endpoint can render them, but
// performs no DB/index writes — the embedding vectors already computed by the
// pipeline run are left on the chunks. This keeps debug runs side-effect free.
func (s *PipelineExecutor) collectDebugOutput(ctx context.Context, pipelineOutput map[string]any, start time.Time) (*PipelineResult, error) {
chunks := NormalizeChunks(pipelineOutput)
return &PipelineResult{
DocID: s.taskCtx.Doc.ID,
KbID: s.taskCtx.Doc.KbID,
Chunks: chunks,
ChunkCount: countDistinctChunkIDs(chunks),
TokenConsumption: GetEmbeddingTokenConsumption(pipelineOutput),
Duration: time.Since(start).Seconds(),
}, nil
}
func (s *PipelineExecutor) processOutput(ctx context.Context, pipelineOutput map[string]any, start time.Time) (*PipelineResult, error) {
if pipelineOutput == nil {
return nil, nil
}
if err := ctx.Err(); err != nil {
return nil, err
}
chunks := NormalizeChunks(pipelineOutput)
if len(chunks) == 0 {
return nil, nil
}
embeddingTokenConsumption := GetEmbeddingTokenConsumption(pipelineOutput)
metadata, err := ProcessChunksForPipeline(
chunks,
s.taskCtx.Doc.ID,
s.taskCtx.Doc.KbID,
*s.taskCtx.Doc.Name,
time.Now(),
)
if err != nil {
return nil, err
}
tableMeta := AggregateTableDocMetadata(chunks, map[string]interface{}(s.taskCtx.Doc.ParserConfig))
if tableMeta != nil {
if metadata == nil {
metadata = make(map[string]any)
}
for k, v := range tableMeta {
if _, exists := metadata[k]; !exists {
metadata[k] = v
}
}
}
// Per-document compiled knowledge products (those emitted by the
// KnowledgeCompiler component and stamped with `compile_kwd`) are persisted
// as available_int=0: invisible to the normal retriever until the dataset-level
// post-processing consumer (§11) merges them into available_int=1 products.
// Ordinary source chunks stay available_int=1 (the index default).
markCompiledProductsHidden(chunks)
if err := s.indexWriter.Write(ctx, chunks); err != nil {
return nil, err
}
// All chunks are now persisted. Notify the dataset-level post-processing consumer
// (§11) that this document is complete: its compiled products were written
// available_int=0 and the consumer later merges them into dataset-level products
// (available_int=1). The notification is sent only after a successful persist
// and is best-effort / non-fatal — a delivery failure is logged but does not
// fail the pipeline task.
if err := knowledge_compile.PublishCompleted(ctx, s.taskCtx.Tenant.ID, s.taskCtx.Doc.KbID, s.taskCtx.Doc.ID, 0); err != nil {
common.Logger.Warn(fmt.Sprintf("knowledge_compile: publish doc_completed for %s failed: %v", s.taskCtx.Doc.ID, err))
}
chunkCount := countDistinctChunkIDs(chunks)
return &PipelineResult{
DocID: s.taskCtx.Doc.ID,
KbID: s.taskCtx.Doc.KbID,
Metadata: metadata,
ChunkCount: chunkCount,
TokenConsumption: embeddingTokenConsumption,
Duration: time.Since(start).Seconds(),
}, nil
}
// countDistinctChunkIDs returns the number of distinct chunk IDs in the slice.
// After ProcessChunksForPipeline, every chunk carries an "id" field computed
// from xxhash(text+docID). Chunks with identical text share the same id and
// the search engine treats them as upserts, so the effective stored chunk count
// is the number of unique ids — not len(chunks). Mirrors the index-side
// deduplication that happens at write time.
func countDistinctChunkIDs(chunks []map[string]any) int {
seen := make(map[string]struct{}, len(chunks))
for _, ck := range chunks {
id, _ := ck["id"].(string)
if id == "" {
continue
}
seen[id] = struct{}{}
}
return len(seen)
}
// markCompiledProductsHidden sets available_int=0 on the per-document compiled
// knowledge products so they are hidden from the retriever until the dataset-level
// post-processing consumer merges them into available_int=1 products (§11). A
// chunk is a compiled product iff it carries the compile_kwd discriminator the
// KnowledgeCompiler component stamps; ordinary source chunks (no compile_kwd)
// keep the index default available_int=1 and remain immediately searchable.
// Merged dataset-level products are written by the consumer, never here, so they are
// never double-marked.
func markCompiledProductsHidden(chunks []map[string]any) {
for _, ck := range chunks {
if _, ok := ck["compile_kwd"]; !ok {
continue
}
ck["available_int"] = 0
}
}
func (s *PipelineExecutor) recordPipelineLog(ctx context.Context, db *gorm.DB, docID, dsl, status string) {
var dslMap entity.JSONMap
if err := json.Unmarshal([]byte(dsl), &dslMap); err != nil {
dslMap = entity.JSONMap{"raw": dsl}
}
log := &entity.PipelineOperationLog{
ID: utility.GenerateUUID(),
TenantID: s.Tenant().ID,
KbID: s.KB().ID,
DocumentID: docID,
PipelineID: &s.canvasID,
TaskType: string(entity.PipelineTaskTypeParse),
DSL: dslMap,
ParserID: s.taskCtx.Doc.ParserID,
DocumentName: *s.Doc().Name,
DocumentSuffix: s.taskCtx.Doc.Suffix,
DocumentType: s.taskCtx.Doc.Type,
SourceFrom: s.taskCtx.Doc.SourceType,
OperationStatus: status,
}
if err := s.logCreateFunc(ctx, db, log); err != nil {
common.Warn(fmt.Sprintf("failed to record pipeline log: %v", err))
}
}
func (s *PipelineExecutor) loadDSLFromCanvas(ctx context.Context, canvasID string) (string, string, error) {
if s == nil || s.taskCtx == nil {
return "", "", fmt.Errorf("pipeline executor: nil task context")
}
if canvasID == "" {
return "", "", fmt.Errorf("pipeline executor: empty canvas id")
}
canvas, err := dao.NewUserCanvasDAO().GetByID(ctx, dao.DB, canvasID)
if err != nil {
return "", "", fmt.Errorf("load canvas %s: %w", canvasID, err)
}
canvasTitle := ""
if canvas.Title != nil {
canvasTitle = *canvas.Title
}
common.Info(fmt.Sprintf("load canvas %s, name %s", canvasID, canvasTitle))
raw, err := json.Marshal(canvas.DSL)
if err != nil {
return "", "", fmt.Errorf("marshal canvas dsl %s: %w", canvasID, err)
}
return string(raw), canvasID, nil
}
// warnUnknownComponentParams logs a warning for any component id in the
// parserConfig whose id is absent from the pipeline DSL. The runtime merge
// (component params -> override_params) silently drops such entries, so we
// surface them here for operability. API-side validation
// already rejects unknown ids on write; this is purely a defensive guard
// for legacy/stale rows.
func warnUnknownComponentParams(dsl string, parserConfig map[string]any) {
if len(parserConfig) == 0 {
return
}
schemas, err := pipelinepkg.ExtractAllComponentParams([]byte(dsl))
if err != nil {
common.Warn(fmt.Sprintf("warnUnknownComponentParams: cannot parse DSL to validate component params: %v", err))
return
}
dslCPNs := make(map[string]struct{}, len(schemas))
for _, s := range schemas {
dslCPNs[s.CpnID] = struct{}{}
}
for cpnID := range parserConfig {
if _, ok := dslCPNs[cpnID]; !ok {
common.Warn(fmt.Sprintf(
"parser_config references cpnID %q not present in the pipeline DSL; it will be ignored at runtime", cpnID))
}
}
}
func (s *PipelineExecutor) runPipelineWithDSL(ctx context.Context, dsl string) (map[string]any, string, error) {
if s == nil || s.taskCtx == nil {
return nil, dsl, fmt.Errorf("pipeline executor: nil task context")
}
parserConfig := map[string]interface{}(s.taskCtx.Doc.ParserConfig)
if parserConfig == nil {
// Debug (dataflow dry-run) contexts intentionally carry no
// ParserConfig; start from an empty map so the debug page cap can be
// injected in place below without a nil-map assignment panic.
parserConfig = map[string]interface{}{}
}
common.InjectExtractorLLMID(parserConfig, s.taskCtx.Tenant.LLMID)
// When the dataset enables auto-metadata, ensure the Extractor node(s)
// carry the enable_metadata mode + field schema so the LLM extraction fires
// (mirrors Python task_executor.py:519 enabling gen_metadata_task). The
// dataset flag is authoritative: a node that already has enable_metadata
// turned on keeps its own config, but a shipped DSL defaulting it to 0 is
// still overridden so auto-metadata can activate.
common.InjectExtractorEnableMetadata(parserConfig)
// Surface component params whose cpnID is absent from the DSL. The
// runtime merge (override_params) silently drops such entries;
// API-side validation already rejects unknown ids on write, so this is a
// defensive guard for legacy/stale rows.
warnUnknownComponentParams(dsl, parserConfig)
pipelineID := "pipeline_" + s.taskCtx.Doc.ID
if s.taskCtx.IngestionTask != nil && s.taskCtx.IngestionTask.ID != "" {
pipelineID = s.taskCtx.IngestionTask.ID
}
pipe, err := pipelinepkg.NewPipelineFromDSL([]byte(dsl), pipelineID,
pipelinepkg.WithProgressSink(s.progressSink),
pipelinepkg.WithDocumentID(s.taskCtx.Doc.ID))
if err != nil {
return nil, dsl, fmt.Errorf("compile pipeline dsl: %w", err)
}
inputs := map[string]any{}
if s.taskCtx.Doc.ID != "" {
inputs["doc_id"] = s.taskCtx.Doc.ID
}
// Run-level metadata shared by both persist and debug (dataflow
// dry-run) runs. In debug the KB is absent (NewDebugTaskContext forces
// KB.ID == ""); in persist it is the document's own KB. Either way the
// Tokenizer reads kb_id from CanvasState.Globals.
inputs["tenant_id"] = s.taskCtx.Tenant.ID
inputs["kb_id"] = s.taskCtx.KB.ID
if s.taskCtx.KB.Language != nil {
inputs["lang"] = *s.taskCtx.KB.Language
}
// File delivery and doc metadata differ between the two run modes.
debug := s.taskCtx.IsDebug()
if debug {
// A debug (dry-run) run has no DB document row, so the parser
// cannot resolve its bytes via doc_id → storage. Deliver the
// uploaded bytes directly as `binary` (what the parser actually
// reads) and surface the doc name/type so family detection works.
if s.taskCtx.File != nil {
inputs["file"] = s.taskCtx.File
inputs["binary"] = s.taskCtx.File
}
if s.taskCtx.Doc.Name != nil && *s.taskCtx.Doc.Name != "" {
inputs["name"] = *s.taskCtx.Doc.Name
}
if s.taskCtx.Doc.Type != "" {
inputs["file_type"] = s.taskCtx.Doc.Type
}
} else {
if s.taskCtx.File != nil {
inputs["file"] = s.taskCtx.File
}
}
// A canvas-debug (dataflow dry-run) must return a fast preview, so it
// caps the parser to the first few pages. The cap is delivered through
// override_params (Run's 3rd argument) — the SAME channel the
// production ParserConfig uses — keyed by the Parser component's cpnID
// and the document's filetype family. It is NOT passed through pipeline
// inputs: the parser selects pages from ParserConfig[cpnID][family]
// ["pages"] (a list of 1-indexed inclusive ranges), exactly mirroring
// NormalizeParserConfigPages / pdf_pages_test.go. See injectDebugPageCap.
if debug {
injectDebugPageCap(dsl, parserConfig, s.taskCtx.Doc.Type)
}
// Component params from Doc.ParserConfig — including the tenant LLM id
// injected into Extractor components above — are passed to Run as
// override_params, keyed by cpnID with override-wins. The DSL itself is
// compiled unchanged.
output, err := pipe.Run(ctx, inputs, parserConfig)
if err != nil {
return nil, dsl, err
}
// Surface the debug-run result DSL to any sink that implements ResultSink
// (the DebugLogSink used by canvas-debug runs). This mirrors Python's
// END-marker `dsl` attachment (rag/flow/pipeline.py:98) so the front-end
// "View result" page can render parsed chunks. The probe is an optional
// capability: non-debug (DB-backed) sinks ignore it and the ProgressSink
// contract is unchanged, keeping the coupling one-directional.
if rs, ok := s.progressSink.(ResultSink); ok {
if resultDSL, e := BuildDebugResultDSL(dsl, output); e == nil {
rs.SetResult(resultDSL)
}
}
payload, err := pipelinepkg.ExtractPayload(dsl, output)
if err != nil {
return nil, dsl, err
}
return payload, dsl, nil
}
// debugPageCapPages is the number of leading pages a canvas-debug
// (dataflow dry-run) parses. The debug preview must return fast, so we cap
// the parser to the first few pages. The cap is expressed as the 1-indexed
// inclusive range [1, debugPageCapPages], matching the production
// ParserConfig[cpnID][filetype]["pages"] shape (see NormalizeParserConfigPages).
const debugPageCapPages = 2
// injectDebugPageCap wires the canvas-debug page cap into parserConfig using
// the SAME channel the production ParserConfig travels through: Run's
// override_params (the 3rd argument), keyed by the Parser component's cpnID
// and the document's filetype family. It must NOT be passed as a pipeline
// input — the parser selects pages from ParserConfig[cpnID][family]["pages"],
// which the deepdoc/pdf parser consumes as a list of page ranges.
//
// dsl is the raw pipeline DSL (used only to discover the Parser component's
// cpnID); docType is the uploaded file's extension (e.g. "pdf"). When no
// Parser component can be found, or the docType yields no known family, the
// call is a no-op (the run parses everything, which is safe).
//
// dsl arrives as the canvas ENVELOPE ({ "dsl": { "components": ... } }) in
// production (loadDSLFromCanvas marshals canvas.DSL), so it is unwrapped the
// same way NewPipelineFromDSL does before ExtractAllComponentParams runs.
// An explicit page cap already present in parserConfig (keyed by cpnID +
// family) is respected and left untouched — the debug default is only a
// fallback, so a debug run can honour a narrower or wider caller-supplied cap.
func injectDebugPageCap(dsl string, parserConfig map[string]any, docType string) {
// Unwrap the canvas envelope to the inner components map.
var raw map[string]any
if err := json.Unmarshal([]byte(dsl), &raw); err != nil {
return
}
if env, ok := raw["dsl"].(map[string]any); ok && len(env) > 0 {
raw = env
}
inner, err := json.Marshal(raw)
if err != nil {
return
}
schemas, err := pipelinepkg.ExtractAllComponentParams(inner)
if err != nil {
return
}
var parserCpnID string
for _, s := range schemas {
if s.ComponentName == component.ComponentNameParser {
parserCpnID = s.CpnID
break
}
}
if parserCpnID == "" {
return
}
family := component.ParserFileFamily(docType)
if family == "" {
return
}
// Respect an explicit page cap already present under cpnID + family.
if cpnEntry, ok := parserConfig[parserCpnID].(map[string]any); ok {
if famEntry, ok := cpnEntry[family].(map[string]any); ok {
if _, has := famEntry["pages"]; has {
return
}
}
}
cpnEntry, ok := parserConfig[parserCpnID].(map[string]any)
if !ok {
cpnEntry = map[string]any{}
parserConfig[parserCpnID] = cpnEntry
}
famEntry, ok := cpnEntry[family].(map[string]any)
if !ok {
famEntry = map[string]any{}
cpnEntry[family] = famEntry
}
// pages is delivered as a JSON-decoded map — the very shape a ParserConfig
// arrives in from the API/storage JSON round-trip: a []any of [from,to]
// pairs. The deepdoc/pdf parser's NormalizePDFPages requires this
// []any-of-[]any form (not a Go [][]int), so it is built explicitly here.
// The shallow override_params merge in applyOverrideParams preserves this
// shape all the way to ConfigureFromSetup, so the cap is honoured.
famEntry["pages"] = []any{[]any{1, debugPageCapPages}}
}