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How do vector (search) databases work? ft: turbopuffer

The GeekNarrator

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Navigating Vector Search in Podcast Data

This chapter delves into vector search and embeddings, examining their application in managing and querying a podcast's vast episode archive. It highlights the techniques for clustering data in high-dimensional space as well as the challenges of efficient storage and retrieval, introducing approximate nearest neighbor indices as a solution. Additionally, the chapter addresses the balance between search precision and performance, discussing the evolution of vector databases and indexing strategies in a growing data landscape.

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