Overview
- Skill Key
- emberdesire/jasper-recall
- Author
- emberdesire
- Source Repo
- openclaw/skills
- Version
- -
- Source Path
- skills/emberdesire/jasper-recall
- Latest Commit SHA
- 384787524658002a549b7d644e20077f41dbe4e1
Stars
0
Installs
0
Status
ACTIVE
Visibility
PUBLIC
直接复制以下提示词,发送给你的 AI 助手即可完成安装。
请先检查是否已安装 SkillHub 商店,若未安装,请根据 https://skillhub-1388575217.cos.ap-guangzhou.myqcloud.com/install/skillhub.md 安装 SkillHub 商店,然后安装 Jasper Recall 技能。 若已安装,则直接安装 Jasper Recall 技能。
# Jasper Recall v0.2.3 Local RAG (Retrieval-Augmented Generation) system for AI agent memory. Gives your agent the ability to remember and search past conversations. **New in v0.2.2:** Shared ChromaDB Collections — separate collections for private, shared, and learnings content. Better isolation for multi-agent setups. **New in v0.2.1:** Recall Server — HTTP API for Docker-isolated agents that can't run CLI directly. **New in v0.2.0:** Shared Agent Memory — bidirectional learning between main and sandboxed agents with privacy controls. ## When to Use - **Memory recall**: Search past sessions for context before answering - **Continuous learning**: Index daily notes and decisions for future reference - **Session continuity**: Remember what happened across restarts - **Knowledge base**: Build searchable documentation from your agent's experience ## Quick Start ### Setup One command installs everything: ```bash npx jasper-recall setup ``` This creates: - Python venv at `~/.openclaw/rag-env` - ChromaDB database at `~/.openclaw/chroma-db` - CLI scripts in `~/.local/bin/` - OpenClaw plugin config in `openclaw.json` ### Why Python? The core search and embedding functionality uses Python libraries: - **ChromaDB** — Vector database for semantic search - **sentence-transformers** — Local embedding models (no API needed) These are the gold standard for local RAG. There are no good Node.js equivalents that work fully offline. ### Why a Separate Venv? The venv at `~/.openclaw/rag-env` provides: | Benefit | Why It Matters | |---------|----------------| | **Isolation** | Won't conflict with your other Python projects | | **No sudo** | Installs to your home directory, no root needed | | **Clean uninstall** | Delete the folder and it's gone | | **Reproducibility** | Same versions everywhere | The dependencies are heavy (~200MB total with the embedding model), but this is a one-time download that runs entirely locally. ### Basic Usage **Search your memory:** ```ba...
# Jasper Recall 🦊 Local RAG (Retrieval-Augmented Generation) system for AI agent memory. Gives your agent the ability to remember and search past conversations using ChromaDB and sentence-transformers. ## Features - **Semantic search** over session logs and memory files - **Local embeddings** — no API keys needed - **Incremental indexing** — only processes changed files - **Session digests** — automatically extracts key info from chat logs - **OpenClaw integration** — works seamlessly with OpenClaw agents ### New in v0.2.0: Shared Agent Memory - **Memory tagging** — Mark entries `[public]` or `[private]` to control visibility - **Privacy filtering** — `--public-only` flag for sandboxed agents - **Shared memory sync** — Bidirectional learning between main and sandboxed agents - **Privacy checker** — Scan content for sensitive data before sharing ### New in v0.3.0: Multi-Agent Mesh (JR-19) - **Multi-agent memory sharing** — N agents can share memory, not just 2 - **Agent-specific collections** — Each agent gets private memory (`agent_sonnet`, `agent_qwen`, etc.) - **Mesh queries** — Query across multiple agents: `recall-mesh "query" --mesh sonnet,qwen,opus` - **Backward compatible** — Legacy collections still work ### New in v0.2.1: Recall Server - **HTTP API server** — `npx jasper-recall serve` for Docker-isolated agents - **Public-only by default** — Secure API access for untrusted callers - **CORS enabled** — Works from browsers and agent containers ## Quick Start ```bash # One-command setup npx jasper-recall setup # Search your memory recall "what did we decide about the API" # Index your files index-digests # Process new session logs digest-sessions ``` ### Multi-Agent Mesh (v0.3.0+) ```bash # Index memory for specific agents index-digests-mesh --agent sonnet index-digests-mesh --agent qwen # Query as specific agent recall-mesh "query" --agent sonnet # Query across multiple agents (mesh mode) recall-mesh "query" --mesh sonnet,qwen,opus ``` See...
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