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Similarity Search Patterns

技能 已验证 活跃

Implement efficient similarity search with vector databases. Use when building semantic search, implementing nearest neighbor queries, or optimizing retrieval performance.

目的

Implement efficient similarity search with vector databases by providing concrete examples and best practices for building semantic search, nearest neighbor queries, and optimizing retrieval performance.

功能

  • Efficient similarity search implementation
  • Support for Pinecone, Qdrant, pgvector, and Weaviate
  • Explanation of distance metrics and index types
  • Code templates for upserting and searching vectors
  • Guidance on RAG, recommendation engines, and search optimization

使用场景

  • Building semantic search systems
  • Implementing RAG retrieval
  • Creating recommendation engines
  • Optimizing search latency
  • Scaling to millions of vectors

非目标

  • Implementing the vector databases themselves
  • Providing generic LLM wrappers without vector search context

Practical Utility

  • info:Edge casesThe skill documents core concepts like distance metrics and index types, implicitly covering some practical considerations, but does not explicitly list failure modes or recovery steps for each template.

安装

请先添加 Marketplace

/plugin marketplace add wshobson/agents
/plugin install llm-application-dev@claude-code-workflows

质量评分

已验证
95 /100
1 day ago 分析

信任信号

最近提交3 days ago
星标35.3k
许可证MIT
状态
查看源代码

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