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Overview
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Learn how to leverage OpenSearch as a powerful vector database solution for AI applications in this 22-minute conference talk from the Linux Foundation. Discover the evolution from traditional lexical search to vector-based similarity search and understand how OpenSearch combines both approaches in a comprehensive package. Explore fundamental concepts of vector databases, including how they store and process embedded meanings of various data types such as text, images, and audio using k-nearest neighbors (k-NN) functionality. Examine practical applications including visual search, semantic search, and recommendation engines with emphasis on real-world use cases. Understand how OpenSearch can serve as a knowledge base for AI systems, particularly in retrieval augmented generation (RAG) applications with large language models, making vector search accessible and straightforward to implement.
Syllabus
Vector Search Made Simple: Getting Started With OpenSearch for AI Applications - Dotan Horovits
Taught by
Linux Foundation