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Getting to the top of the GPT Store (and building an AI-native search engine, too)

Artificial Ignorance

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Enhancing Search Relevance with Language Models and Semantic Similarity

The chapter explores the use of Language Models (LLMs) and semantic similarity in a specialized search engine for academic research papers. It details how LLMs are employed to extract metadata and improve search result relevance, along with the integration of vector databases for a comprehensive search pipeline. Additionally, it discusses the challenges of ingesting scientific papers, particularly PDFs, and the ongoing efforts to build a robust PDF parsing flow for accurate content extraction.

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