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MCP内存知识图谱管理器

一种定制的MCP内存服务器,它能够通过语言模型捕获交互来创建和管理知识图谱,具有自定义内存路径和时间戳等功能。

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README

Memory Custom

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This project adds new features to the Memory server offered by the MCP team. It allows for the creation and management of a knowledge graph that captures interactions via a language model (LLM).

New Features

1. Custom Memory Paths

  • Users can now specify different memory file paths for various projects.
  • Why?: This feature enhances organization and management of memory data, allowing for project-specific memory storage.

2. Timestamping

  • The server now generates timestamps for interactions.
  • Why?: Timestamps enable tracking of when each memory was created or modified, providing better context and history for the stored data.

Getting Started

Prerequisites

  • Node.js (version 16 or higher)

Installing via Smithery

To install Knowledge Graph Memory Server for Claude Desktop automatically via Smithery:

npx -y @smithery/cli install @BRO3886/mcp-memory-custom --client claude

Installation

  1. Clone the repository:

    git clone git@github.com:BRO3886/mcp-memory-custom.git
    cd mcp-memory-custom
    
  2. Install the dependencies:

    npm install
    

Configuration

Before running the server, you can set the MEMORY_FILE_PATH environment variable to specify the path for the memory file. If not set, the server will default to using memory.json in the same directory as the script.

Running the Server

Updating the mcp server json file

Add this to your claude_desktop_config.json / .cursor/mcp.json file:

{
  "mcpServers": {
    "memory": {
      "command": "node",
      "args": ["/path/to/mcp-memory-custom/dist/index.js"]
    }
  }
}

System Prompt changes:

Follow these steps for each interaction:
1. The memoryFilePath for this project is /path/to/memory/project_name.json - always pass this path to the memory file operations (when creating entities, relations, or retrieving memory etc.)
2. User Identification:
   - You should assume that you are interacting with default_user
   - If you have not identified default_user, proactively try to do so.

3. Memory Retrieval:
   - Always begin your chat by saying only "Remembering..." and retrieve all relevant information from your knowledge graph
   - Always refer to your knowledge graph as your "memory"

4. Memory
   - While conversing with the user, be attentive to any new information that falls into these categories:
     a) Basic Identity (age, gender, location, job title, education level, etc.)
     b) Behaviors (interests, habits, etc.)
     c) Preferences (communication style, preferred language, etc.)
     d) Goals (goals, targets, aspirations, etc.)
     e) Relationships (personal and professional relationships up to 3 degrees of separation)

5. Memory Update:
   - If any new information was gathered during the interaction, update your memory as follows:
     a) Create entities for recurring organizations, people, and significant events, add timestamps to wherever required. You can get current timestamp via get_current_time
     b) Connect them to the current entities using relations
     c) Store facts about them as observations, add timestamps to observations via get_current_time


IMPORTANT: Provide a helpful and engaging response, asking relevant questions to encourage user engagement. Update the memory during the interaction, if required, based on the new information gathered (point 4).

Running the Server Locally

To start the Knowledge Graph Memory Server, run:

npm run build
node dist/index.js

The server will listen for requests via standard input/output.

API Endpoints

The server exposes several tools that can be called with specific parameters:

  • Get Current Time
  • Set Memory File Path
  • Create Entities
  • Create Relations
  • Add Observations
  • Delete Entities
  • Delete Observations
  • Delete Relations
  • Read Graph
  • Search Nodes
  • Open Nodes

Acknowledgments

  • Inspired by the Memory server from Anthropic.
help

运行方式说明

cloud

托管运行

托管运行通常表示这个 MCP Server 由服务方环境承载,用户一般按页面提供的连接方式或授权流程接入,不需要在本地长期启动一个 MCP 进程

  1. 打开服务方连接页
  2. 完成授权或复制端点
  3. 在 MCP 客户端中连接
terminal

本地运行 / 其它方式

本地运行通常需要用户在自己的电脑或服务器上安装依赖,把 server_config 复制到 MCP 客户端,并按 env_schema 补齐环境变量、密钥或其它配置

  1. 复制 server_config
  2. 安装所需依赖
  3. 补齐环境变量后重启客户端