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f54a14f408af249f0db67814744723014e4045c0
add ChunkInfo interface, improve chunk handling typings, and print ingest summary statistics. This introduces typed chunk metadata, refactors related code, and adds a summary report for document sizes, sections, and chunk distribution
RAG Pipeline for Language Specification Exploration
This project implements a RAG-based AI chat agent to explore the ECMAScript specification and its implementation in engine262.
Prerequisites
- Node.js: Version 18+
- Ollama: Installed locally with an embedding model (e.g.,
nomic-embed-text) - OpenAI-compatible Endpoint: A hosted or local LLM service
Setup
-
Install dependencies:
bun install -
Prepare environment:
export OPENAI_API_BASE="your_endpoint_base_url" export OPENAI_API_KEY="your_api_key" -
Clone specification: (Ensure
./spec-built/multipagecontains the HTML files) -
Ingest data:
bun run ingestNote: This will take significant time as it generates local embeddings via Ollama for both the spec and the implementation.
-
Build graph:
bun run build -
Run tests:
bun test
Usage
Ask the agent questions about how code relates to the specification:
bun run agent "Explain how the 'if' statement works and show its implementation."
The agent will use tools to search the specification, explore the implementation code, and navigate the relationships between them using the graph.
Languages
HTML
49%
JavaScript
32.7%
TypeScript
18.3%