Powering next gen
AI apps with Postgres
Build and scale transformative LLM applications with vector indexes and similarity search in Postgres
Get StartedScale your AI apps to millions of users with Neon
Speed up your queries with HNSW
Query execution time (ms) at 99% recall
HNSW indexes bring 20x the speed for 99% accuracy to graph-based approximate nearest neighbor search in your Postgres database.
Simple to use,
scales automatically
Store vector embeddings and perform similarity search
Store embeddings and perform vector similarity search in Postgres with pgvector.Learn moreabout pgvector
Vector search with Neon
Use the power of HNSW indexes to unlock new levels of efficiency in high-dimensional vector similarity search in Postgres
Reliable & actively maintained
The pgvector extension is open-source and actively maintained
Amazing scalability
Grow your vector stores without impacting search performance
Blazingly fast search
Use HNSW indexes for fast and scalable vector similarity search in Postgres
Highly compatible
Use Neon with pgvector in your Postgres and LangChain projects
Start building
AI apps on Neon
Check out the following example LLM and AI apps and start building in minutes
Chatbot
Give LLM-based chatbots long-term memory and provide relevant context from your data.
View exampleSemantic search
Build next-level search experiences for your users where you understand the true meaning of their queries.
View exampleImage similarity search
From the Neon Community: Image similarity search with Vertex AI, Neon, and pgvector.
View example
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