fix: cancel abandoned highlight() semantic work and harden WASM engine recovery
highlight() used Promise.race with a 10s timeout, but the losing semantic phase promise continued running 25 WASM micro-batches, saturating the event loop and degrading all subsequent operations (find() going from ~200ms to ~10,000ms). Add AbortController to highlight() so the semantic phase stops immediately on timeout or error. Pass abort signal through embedBatch() → EmbeddingManager → micro-batch loop. Also add defensive hardening: - CandleEmbeddingEngine: try/catch around WASM calls resets engine state on failure so next call triggers re-initialization - WASMEmbeddingEngine: initialize() now checks underlying Candle engine state, not just its own flag, completing the recovery chain
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4 changed files with 54 additions and 23 deletions
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@ -4647,7 +4647,7 @@ export class Brainy<T = any> implements BrainyInterface<T> {
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* // embeddings.length === 3
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* // embeddings[0].length === 384
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*/
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async embedBatch(texts: string[]): Promise<number[][]> {
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async embedBatch(texts: string[], options?: { signal?: AbortSignal }): Promise<number[][]> {
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await this.ensureInitialized()
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if (texts.length === 0) {
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@ -4655,7 +4655,7 @@ export class Brainy<T = any> implements BrainyInterface<T> {
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}
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// Use native WASM batch API: single forward pass instead of N individual calls
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return await embeddingManager.embedBatch(texts)
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return await embeddingManager.embedBatch(texts, options)
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}
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/**
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@ -4784,20 +4784,25 @@ export class Brainy<T = any> implements BrainyInterface<T> {
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}
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// === PHASE 2: Find semantic matches with timeout fallback ===
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// AbortController ensures the background semantic work (WASM batch embedding)
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// is cancelled on timeout or error, preventing event loop saturation and
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// WASM engine crashes from abandoned promises.
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const SEMANTIC_TIMEOUT_MS = 10_000
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const abortController = new AbortController()
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try {
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const semanticResult = await Promise.race([
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this.highlightSemanticPhase(query, chunks, threshold, highlightMap),
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this.highlightSemanticPhase(query, chunks, threshold, highlightMap, abortController.signal),
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new Promise<'timeout'>((resolve) => setTimeout(() => resolve('timeout'), SEMANTIC_TIMEOUT_MS))
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])
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if (semanticResult === 'timeout') {
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// Return Phase 1 text-only results on timeout
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abortController.abort()
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const textHighlights = Array.from(highlightMap.values())
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return textHighlights.sort((a, b) => b.score - a.score)
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}
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} catch {
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// On any error in semantic phase, return Phase 1 results
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abortController.abort()
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const textHighlights = Array.from(highlightMap.values())
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return textHighlights.sort((a, b) => b.score - a.score)
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}
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@ -4815,14 +4820,19 @@ export class Brainy<T = any> implements BrainyInterface<T> {
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query: string,
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chunks: Array<{ text: string, position: [number, number], contentCategory?: import('./types/brainy.types.js').ContentCategory }>,
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threshold: number,
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highlightMap: Map<string, import('./types/brainy.types.js').Highlight>
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highlightMap: Map<string, import('./types/brainy.types.js').Highlight>,
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signal?: AbortSignal
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): Promise<void> {
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if (signal?.aborted) return
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// Get query embedding
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const queryVector = await this.embed(query)
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if (signal?.aborted) return
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// Batch embed all chunks using native WASM batch API
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const chunkTexts = chunks.map(c => c.text)
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const chunkVectors = await this.embedBatch(chunkTexts)
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const chunkVectors = await this.embedBatch(chunkTexts, { signal })
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if (signal?.aborted) return
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// Calculate semantic similarities
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for (let i = 0; i < chunks.length; i++) {
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@ -219,7 +219,7 @@ export class EmbeddingManager {
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* @param texts Array of strings to embed
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* @returns Array of embedding vectors (384 dimensions each)
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*/
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async embedBatch(texts: string[]): Promise<number[][]> {
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async embedBatch(texts: string[], options?: { signal?: AbortSignal }): Promise<number[][]> {
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if (texts.length === 0) return []
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const isTestMode =
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@ -248,6 +248,10 @@ export class EmbeddingManager {
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// so other requests (HTTP, timers, I/O) can proceed
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const allResults: number[][] = []
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for (let i = 0; i < texts.length; i += MICRO_BATCH_SIZE) {
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if (options?.signal?.aborted) {
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return allResults
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}
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const batch = texts.slice(i, i + MICRO_BATCH_SIZE)
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const batchResults = await this.engine.embedBatch(batch)
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allResults.push(...batchResults)
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@ -205,19 +205,27 @@ export class CandleEmbeddingEngine {
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throw new Error('Engine not properly initialized')
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}
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const startTime = Date.now()
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try {
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const startTime = Date.now()
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const embedding = this.engine.embed(text)
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const embeddingArray = Array.from(embedding)
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const embedding = this.engine.embed(text)
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const embeddingArray = Array.from(embedding)
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const processingTimeMs = Date.now() - startTime
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this.embedCount++
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this.totalProcessingTimeMs += processingTimeMs
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const processingTimeMs = Date.now() - startTime
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this.embedCount++
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this.totalProcessingTimeMs += processingTimeMs
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return {
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embedding: embeddingArray,
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tokenCount: 0, // Candle handles tokenization internally
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processingTimeMs,
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return {
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embedding: embeddingArray,
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tokenCount: 0, // Candle handles tokenization internally
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processingTimeMs,
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}
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} catch (error) {
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console.error('WASM embed failed, marking engine for re-initialization:', error)
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this.initialized = false
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this.engine = null
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this.wasmModule = null
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throw error
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}
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}
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@ -237,10 +245,18 @@ export class CandleEmbeddingEngine {
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return []
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}
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const embeddings = this.engine.embed_batch(texts)
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this.embedCount += texts.length
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try {
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const embeddings = this.engine.embed_batch(texts)
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this.embedCount += texts.length
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return embeddings.map((e) => Array.from(e))
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return embeddings.map((e) => Array.from(e))
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} catch (error) {
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console.error('WASM embedBatch failed, marking engine for re-initialization:', error)
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this.initialized = false
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this.engine = null
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this.wasmModule = null
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throw error
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}
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}
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/**
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@ -52,8 +52,9 @@ export class WASMEmbeddingEngine {
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* Initialize the engine
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*/
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async initialize(): Promise<void> {
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// Already initialized
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if (this.initialized) {
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// Only skip if BOTH this layer and the underlying Candle engine are initialized.
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// If Candle crashed and reset itself, we must re-initialize even though our flag is true.
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if (this.initialized && this.candleEngine.isInitialized()) {
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return
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}
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