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enrichenrich 搜索

Agent Skill

enrich 用于查找、检索和筛选相关信息,适合在 Codex、Claude、Cursor、Gemini CLI 中需要根据关键词、任务场景或来源线索快速定位候选结果时使用。可结合来源仓库、安装命令和原始 README 继续核验具体用法。安装前建议确认权限范围、维护状态,以及是否会触发联网、命令执行或文件读写。

总安装

2,398

周安装

97

GitHub Stars

189

下载量

753
CodexClaudeCursorGemini CLI

安装说明

本站只整理中文说明和来源信息,不托管安装包,也不代用户安装。

GitHub

来源数

2

许可证

unknown

最后核验

2026-05-01

来源状态

来源可访问

安装方式

通过对话安装

复制提示词发给支持本地命令或 Skills 的 AI 助手,先确认命令和权限,再让它执行。

请帮我安装这个 Agent Skill:enrich(enrich 搜索)
来源仓库:https://github.com/sharpdeveye/maestro
仓库路径:skills/enrich
安装命令:
npx skills add https://github.com/sharpdeveye/maestro --skill enrich
安装前请先检查当前环境是否支持对应 CLI,并向我确认将要执行的命令、安装目录、联网范围和文件读写权限;确认后再执行。

命令行安装

复制命令到本机终端执行。该命令会通过 npx skills 从第三方来源获取 Skill;本站只展示命令,不托管安装包,也不自动执行。

skills.shnpx skills
npx skills add https://github.com/sharpdeveye/maestro --skill enrich

简介

基于 Maestro 工作流框架的知识增强技能,用于多源信息检索与整合。

  • 必须遵循 /agent-workflow 协议,优先建立 grounding 知识库再执行任务。
  • 支持 RAG 架构下的分块策略与检索模式优化,提升答案准确性与可追溯性。
  • 需提前配置知识源,未 grounding 时禁止直接输出结论以防幻觉风险。
  • enrich 属于研究检索类 Skill,可作为该场景下的辅助能力补充。

SKILL.md

MANDATORY PREPARATION

Invoke /agent-workflow — it contains workflow principles, anti-patterns, and the Context Gathering Protocol. Follow the protocol before proceeding — if no workflow context exists yet, you MUST run /teach-maestro first. Consult the knowledge-systems reference in the agent-workflow skill for RAG architecture, chunking strategies, and retrieval patterns.


Add knowledge sources to ground the workflow in facts. Without grounding, agents hallucinate. With grounding, they cite sources.

Knowledge Source Assessment

Identify what knowledge the workflow needs:

Knowledge TypeSourceUpdate FrequencyAccess Pattern
Domain docsInternal docs, specsMonthlySemantic search
Code contextCodebaseReal-timeCode search
User dataDatabase, CRMReal-timeStructured query
External dataAPIs, webReal-timeAPI call
HistoricalLogs, past interactionsDailyTime-range query

Add RAG Pipeline

For document-based knowledge (consult the knowledge-systems reference in the agent-workflow skill):

  1. Select documents: Identify the authoritative source documents
  2. Chunk strategy: Choose chunking based on document type (semantic > token-based)
  3. Embed: Use appropriate embedding model for the domain
  4. Index: Store in vector database with metadata
  5. Retrieve: Implement hybrid search (semantic + keyword)
  6. Inject: Add retrieved context to the prompt with source attribution

Add Structured Data

For database-backed knowledge:

  1. Define the query interface: Natural language → structured query
  2. Add guardrails: Read-only access, query complexity limits
  3. Format results: Transform raw data into context the model can use
  4. Attribute: Include data source and freshness in the context

Add Real-Time Data

For live information:

  1. Identify APIs: What external services provide the needed data
  2. Cache strategy: How often does the data change? Cache accordingly
  3. Fallback: What happens when the API is down?
  4. Attribution: Include data timestamp and source

Enrichment Checklist

  • Every knowledge source has attribution (source, date, confidence)
  • Retrieval quality tested independently of generation quality
  • Chunk sizes tested and optimized for the document types
  • Fallbacks exist for all external knowledge sources
  • Knowledge base has a refresh/update strategy
  • PII is handled appropriately in knowledge sources

Recommended Next Step

After enrichment, run /evaluate to test retrieval quality, or /iterate to set up continuous monitoring of knowledge freshness.

NEVER:

  • Index everything without curation (garbage in = garbage out)
  • Skip source attribution (hallucination without attribution is undetectable)
  • Build RAG without testing retrieval quality first
  • Use fixed chunk sizes for all document types
  • Assume embedding similarity equals relevance

适合场景

01

用户想查找某类 Agent Skill 时

02

需要根据任务场景推荐可安装能力包时

03

需要对比不同来源的安装命令和来源信息时

能力概览

能力 1

按任务关键词查找相关 Skills

能力 2

展示可复制的安装命令

能力 3

保留来源站点、仓库和原始说明,方便继续核验

能力 4

展示第三方安全扫描或审计结果

安装后应在对应宿主中按原始 README 的触发条件使用;具体调用方式请以来源页面和 README 为准。

平台分布

Codex

34.95%
按下载量换算263

Claude

31.65%
按下载量换算238

Cursor

19.59%
按下载量换算148

Gemini CLI

9.35%
按下载量换算70

安全审计

Gen Agent Trust Hub

通过

Socket

通过

Snyk

可疑

权限和风险

需要联网

该 Skill 可能需要联网访问来源站点、仓库或外部 API;具体网络访问范围需要结合源码和 README 复核。

安装前确认

本站仅展示第三方公开信息,不托管安装包,不提供自动安装或运行环境。安装前应自行审查源码、依赖和命令行为。来源安全扫描存在 warning/failed 结果,不能写成本站确认安全。当前只有一个来源,正式发布前建议补源仓库或其他目录站核验。

来源信息

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