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Scholar RAG MCP

Official

by notwhiteblank ยท Python

Academic paper knowledge-base MCP server: PDF ingest, vector search with reranking, KB management.

scholar-rag-mcp is an academic-paper knowledge-base MCP server that ingests PDFs, processes them through a parsing pipeline (MinerU), normalizes metadata, annotates section structure, chunks and embeds text, and stores results in Qdrant for semantic retrieval and section-based reading.

๐Ÿ› ๏ธ Key Features

  • PDF ingest via a real parsing pipeline (MinerU)
  • Metadata normalization
  • Section structure annotation
  • Chunking and text embedding
  • Storage in Qdrant for later search

๐Ÿš€ Use Cases

  • Semantically search embedded chunks from an academic PDF folder
  • Run PubMed-style document queries
  • Read full text section by section

โšก Developer Benefits

  • Provides publishable academic-paper knowledge-base access through MCP
  • Enables agent or user-driven retrieval over stored chunks and sections

โš ๏ธ Limitations

  • Preview release (v0.3.0); interfaces and storage layout may change in future versions