Current state: - Unified augmentation system to BrainyAugmentation interface - Changed methods to specific noun/verb naming (addNoun, getNoun, etc) - Made old methods private - Combined getNouns into single unified method - Neural API exists and is complete - Triple Intelligence uses correct Brainy operators (not MongoDB) Issues identified: - Documentation incorrectly shows MongoDB operators (code is correct) - Need to ensure all features are properly exposed - Need to verify nothing was lost in simplification This commit serves as a rollback point before applying fixes.
387 lines
No EOL
10 KiB
JavaScript
387 lines
No EOL
10 KiB
JavaScript
#!/usr/bin/env node
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/**
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* Prepare Models Script
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*
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* Intelligently handles model preparation for different deployment scenarios:
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* 1. Development: Models download automatically on first use
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* 2. Docker/CI: Pre-download during build stage
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* 3. Serverless: Bundle with deployment package
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* 4. Production: Verify models exist, fail fast if missing
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*/
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import { existsSync } from 'fs'
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import { readFile, mkdir, writeFile, stat } from 'fs/promises'
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import { join, dirname } from 'path'
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import { fileURLToPath } from 'url'
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import { pipeline, env } from '@huggingface/transformers'
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import { execSync } from 'child_process'
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import https from 'https'
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import { createWriteStream } from 'fs'
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import { promisify } from 'util'
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import { finished } from 'stream'
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const streamFinished = promisify(finished)
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const __dirname = dirname(fileURLToPath(import.meta.url))
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// Model configuration
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const MODEL_CONFIG = {
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name: 'Xenova/all-MiniLM-L6-v2',
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expectedFiles: [
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'config.json',
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'tokenizer.json',
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'tokenizer_config.json',
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'onnx/model.onnx'
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],
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fallbackUrls: {
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// GitHub Releases (our backup)
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github: 'https://github.com/soulcraftlabs/brainy-models/releases/download/v1.0/all-MiniLM-L6-v2.tar.gz',
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// Future CDN
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cdn: 'https://models.soulcraft.com/brainy/all-MiniLM-L6-v2.tar.gz'
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}
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}
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class ModelPreparer {
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constructor() {
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this.modelsDir = join(__dirname, '..', 'models')
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this.modelPath = join(this.modelsDir, ...MODEL_CONFIG.name.split('/'))
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}
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/**
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* Main entry point - intelligently prepares models based on context
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*/
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async prepare() {
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console.log('🧠 Brainy Model Preparation')
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console.log('===========================')
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// Detect deployment context
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const context = this.detectContext()
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console.log(`📍 Context: ${context}`)
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switch (context) {
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case 'production':
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return await this.prepareProduction()
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case 'docker':
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return await this.prepareDocker()
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case 'ci':
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return await this.prepareCI()
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case 'development':
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return await this.prepareDevelopment()
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default:
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return await this.prepareDefault()
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}
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}
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/**
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* Detect the deployment context
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*/
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detectContext() {
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// Check environment variables
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if (process.env.NODE_ENV === 'production') return 'production'
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if (process.env.DOCKER_BUILD === 'true') return 'docker'
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if (process.env.CI === 'true') return 'ci'
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if (process.env.NODE_ENV === 'development') return 'development'
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// Check for Docker build context
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if (existsSync('/.dockerenv')) return 'docker'
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// Check for common CI indicators
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if (process.env.GITHUB_ACTIONS || process.env.GITLAB_CI) return 'ci'
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// Default to development
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return 'development'
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}
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/**
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* Production: Models MUST exist, fail fast if not
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*/
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async prepareProduction() {
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console.log('🏭 Production mode - verifying models...')
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const modelExists = await this.verifyModels()
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if (!modelExists) {
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console.error('❌ CRITICAL: Models not found in production!')
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console.error(' Models must be pre-downloaded during build stage.')
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console.error(' Run: npm run download-models')
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process.exit(1)
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}
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console.log('✅ Models verified for production')
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return true
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}
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/**
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* Docker: Download models during build stage
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*/
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async prepareDocker() {
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console.log('🐳 Docker build - downloading models...')
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// Check if already exists
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if (await this.verifyModels()) {
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console.log('✅ Models already present')
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return true
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}
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// Download models
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return await this.downloadModels()
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}
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/**
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* CI: Download models for testing
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*/
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async prepareCI() {
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console.log('🔧 CI environment - downloading models for tests...')
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// Check cache first
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if (await this.checkCICache()) {
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console.log('✅ Using cached models')
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return true
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}
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// Download and cache
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const success = await this.downloadModels()
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if (success) {
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await this.saveCICache()
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}
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return success
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}
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/**
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* Development: Optional download, will auto-download on first use
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*/
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async prepareDevelopment() {
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console.log('💻 Development mode')
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if (await this.verifyModels()) {
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console.log('✅ Models already downloaded')
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return true
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}
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console.log('ℹ️ Models will download automatically on first use')
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console.log(' To pre-download now: npm run download-models')
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// Ask if they want to download now
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if (process.stdout.isTTY && !process.env.SKIP_PROMPT) {
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const readline = await import('readline')
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const rl = readline.createInterface({
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input: process.stdin,
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output: process.stdout
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})
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return new Promise((resolve) => {
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rl.question('Download models now? (y/N): ', async (answer) => {
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rl.close()
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if (answer.toLowerCase() === 'y') {
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resolve(await this.downloadModels())
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} else {
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resolve(true)
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}
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})
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})
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}
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return true
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}
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/**
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* Default: Try to be smart about it
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*/
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async prepareDefault() {
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console.log('🤖 Auto-detecting best approach...')
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if (await this.verifyModels()) {
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console.log('✅ Models found')
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return true
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}
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// If running as part of install, don't download
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if (process.env.npm_lifecycle_event === 'postinstall') {
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console.log('ℹ️ Skipping download during install (will download on first use)')
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return true
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}
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// Otherwise download
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return await this.downloadModels()
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}
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/**
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* Verify all required model files exist
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*/
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async verifyModels() {
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for (const file of MODEL_CONFIG.expectedFiles) {
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const filePath = join(this.modelPath, file)
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if (!existsSync(filePath)) {
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return false
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}
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}
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// Verify model.onnx size (should be ~87MB)
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const modelOnnxPath = join(this.modelPath, 'onnx', 'model.onnx')
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if (existsSync(modelOnnxPath)) {
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const stats = await stat(modelOnnxPath)
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const sizeMB = Math.round(stats.size / (1024 * 1024))
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if (sizeMB < 80 || sizeMB > 100) {
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console.warn(`⚠️ Model size unexpected: ${sizeMB}MB (expected ~87MB)`)
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return false
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}
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}
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return true
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}
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/**
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* Download models with fallback sources
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*/
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async downloadModels() {
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console.log('📥 Downloading transformer models...')
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// Try transformers.js first (Hugging Face)
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try {
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await this.downloadFromTransformers()
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console.log('✅ Downloaded from Hugging Face')
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return true
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} catch (error) {
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console.warn('⚠️ Hugging Face download failed:', error.message)
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}
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// Try GitHub releases
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try {
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await this.downloadFromGitHub()
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console.log('✅ Downloaded from GitHub')
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return true
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} catch (error) {
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console.warn('⚠️ GitHub download failed:', error.message)
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}
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// Try CDN
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try {
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await this.downloadFromCDN()
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console.log('✅ Downloaded from CDN')
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return true
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} catch (error) {
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console.warn('⚠️ CDN download failed:', error.message)
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}
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console.error('❌ All download sources failed')
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return false
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}
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/**
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* Download using transformers.js (official Hugging Face)
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*/
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async downloadFromTransformers() {
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env.cacheDir = this.modelsDir
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env.allowRemoteModels = true
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console.log(' Source: Hugging Face')
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console.log(' Model:', MODEL_CONFIG.name)
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// Load pipeline to trigger download
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const extractor = await pipeline('feature-extraction', MODEL_CONFIG.name)
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// Test it works
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const test = await extractor('test', { pooling: 'mean', normalize: true })
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console.log(` ✓ Model test passed (dims: ${test.data.length})`)
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return true
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}
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/**
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* Download from GitHub releases (our backup)
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*/
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async downloadFromGitHub() {
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const url = MODEL_CONFIG.fallbackUrls.github
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console.log(' Source: GitHub Releases')
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// Download tar.gz
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const tempFile = join(this.modelsDir, 'temp-model.tar.gz')
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await this.downloadFile(url, tempFile)
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// Extract
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await mkdir(this.modelPath, { recursive: true })
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execSync(`tar -xzf ${tempFile} -C ${this.modelPath}`, { stdio: 'inherit' })
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// Cleanup
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await unlink(tempFile)
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return true
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}
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/**
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* Download from CDN (future)
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*/
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async downloadFromCDN() {
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const url = MODEL_CONFIG.fallbackUrls.cdn
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console.log(' Source: Soulcraft CDN')
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// Similar to GitHub approach
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throw new Error('CDN not yet available')
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}
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/**
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* Download a file from URL
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*/
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async downloadFile(url, destination) {
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await mkdir(dirname(destination), { recursive: true })
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return new Promise((resolve, reject) => {
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const file = createWriteStream(destination)
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https.get(url, (response) => {
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if (response.statusCode !== 200) {
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reject(new Error(`HTTP ${response.statusCode}`))
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return
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}
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response.pipe(file)
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file.on('finish', () => {
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file.close()
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resolve()
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})
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}).on('error', reject)
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})
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}
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/**
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* Check CI cache for models
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*/
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async checkCICache() {
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// GitHub Actions cache
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if (process.env.GITHUB_ACTIONS) {
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const cachePath = process.env.RUNNER_TEMP + '/brainy-models'
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if (existsSync(cachePath)) {
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// Copy from cache
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execSync(`cp -r ${cachePath}/* ${this.modelsDir}/`, { stdio: 'inherit' })
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return true
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}
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}
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return false
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}
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/**
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* Save models to CI cache
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*/
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async saveCICache() {
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// GitHub Actions cache
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if (process.env.GITHUB_ACTIONS) {
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const cachePath = process.env.RUNNER_TEMP + '/brainy-models'
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await mkdir(cachePath, { recursive: true })
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execSync(`cp -r ${this.modelsDir}/* ${cachePath}/`, { stdio: 'inherit' })
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}
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}
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}
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// Run the preparer
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const preparer = new ModelPreparer()
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preparer.prepare()
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.then(success => {
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if (!success) {
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process.exit(1)
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}
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})
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.catch(error => {
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console.error('❌ Fatal error:', error)
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process.exit(1)
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}) |