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knowledge-agent

Build and query AI-powered knowledge bases from claude-mem observations. Use when users want to create focused "brains" from their observation history, ask questions about past work patterns, or compile expertise on specific topics.

DeepseekModel 官方收录技能 质量 优秀 · 90 v1.0.0

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https://deepseekmodel.com/api/download.php?id=thedotmack-claude-mem-plugin-skills-knowledge-agent-skill-md&format=skill
下载 .skill 标准格式,含 system_prompt 与 model_config,导入任意 Agent 框架即可使用
.skill 文件中 system_prompt 字段的实际内容。
name knowledge-agent description Build and query AI-powered knowledge bases from claude-mem observations. Use when users want to create focused "brains" from their observation history, ask questions about past work patterns, or compile expertise on specific topics. Knowledge Agent Build and query AI-powered knowledge bases from claude-mem observations. What Are Knowledge Agents? Knowledge agents are filtered corpora of observations compiled into a conversational AI session. Build a corpus from your observation history, prime it (loads the knowledge into an AI session), then ask it questions conversationally. Think of them as custom "brains": "everything about hooks", "all decisions from the last month", "all bugfixes for the worker service". Workflow Step 1: Build a corpus build_corpus name="hooks-expertise" description="Everything about the hooks lifecycle" project="claude-mem" concepts="hooks" limit=500 Filter options: project — filter by project name types — comma-separated: decision, bugfix, feature, refactor, discovery, change concepts — comma-separated concept tags files — comma-separated file paths (prefix match) query — semantic search query dateStart / dateEnd — ISO date range limit — max observations (default 500) Step 2: Prime the corpus prime_corpus name="hooks-expertise" This creates an AI session loaded with all the corpus knowledge. Takes a moment for large corpora. Step 3: Query query_corpus name="hooks-expertise" question="What are the 5 lifecycle hooks and when does each fire?" The knowledge agent answers from its corpus. Follow-up questions maintain context. Step 4: List corpora list_corpora Shows all corpora with stats and priming status. Tips Focused corpora work best — "hooks architecture" beats "everything ever" Prime once, query many times — the session persists across queries Reprime for fresh context — if the conversation drifts, reprime to reset Rebuild to update — when new observations are added, rebuild then reprime Maintenance Rebuild a corpus (refresh with new observations) rebuild_corpus name="hooks-expertise" After rebuilding, reprime to load the updated knowledge: Reprime (fresh session) reprime_corpus name="hooks-expertise" Clears prior Q&A context and reloads the corpus into a new session.
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下载的 .skill 包内含以下字段。
字段 说明
format格式标识(skill/v1)
skill_id技能唯一 ID
name技能名称
version版本号
description技能描述
category所属分类(数组)
trigger_words触发词列表
tags标签列表
source来源标识
source_url来源链接(本页地址)
exported_at导出时间(每次下载生成)
system_prompt系统提示词正文
model_config模型参数:provider / model / temperature / max_tokens / top_p
examples示例
install_guide各平台导入说明(Coze / Dify / Claude / 自定义框架)
同一份技能可按不同平台格式导出。
.skill 标准格式,含 system_prompt 与 model_config,导入任意 Agent 框架即可使用 下载
.skillpro 增强格式,额外含脚本 / 工具 / 依赖 / 钩子占位 下载
.json 纯 JSON 导出,只含 system_prompt 与模型参数 下载
Coze 带 frontmatter 的 Markdown,Coze 平台导入用 下载
Dify Dify DSL,创建应用后直接导入 下载

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