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Knowledge graph-based persistent memory system

README

Knowledge Graph Memory Server

A basic implementation of persistent memory using a local knowledge graph. This lets Claude remember information about the user across chats.

Published on npm as @modelcontextprotocol/server-memory.

Core Concepts

Entities

Entities are the primary nodes in the knowledge graph. Each entity has:

  • A unique name (identifier)
  • An entity type (e.g., "person", "organization", "event")
  • A list of observations

Example:

{
  "name": "John_Smith",
  "entityType": "person",
  "observations": ["Speaks fluent Spanish"]
}

Relations

Relations define directed connections between entities. They are always stored in active voice and describe how entities interact or relate to each other.

Example:

{
  "from": "John_Smith",
  "to": "Anthropic",
  "relationType": "works_at"
}

Observations

Observations are discrete pieces of information about an entity. They are:

  • Stored as strings
  • Attached to specific entities
  • Can be added or removed independently
  • Should be atomic (one fact per observation)

Example:

{
  "entityName": "John_Smith",
  "observations": [
    "Speaks fluent Spanish",
    "Graduated in 2019",
    "Prefers morning meetings"
  ]
}

API

Tools

  • create_entities

    • Create multiple new entities in the knowledge graph
    • Input: entities (array of objects)
      • Each object contains:
        • name (string): Entity identifier
        • entityType (string): Type classification
        • observations (string[]): Associated observations
    • Ignores entities with existing names (and repeats of a name earlier in the same call); their observations are not added
    • Returns the created entities. When any were skipped, the structured result also lists their names in skipped, and a second text item says which were skipped (use add_observations to extend an existing entity)
  • create_relations

    • Create multiple new relations between entities
    • Input: relations (array of objects)
      • Each object contains:
        • from (string): Source entity name
        • to (string): Target entity name
        • relationType (string): Relationship type in active voice
    • Skips duplicate relations
    • Fails if either the source or target entity doesn't exist
  • add_observations

    • Add new observations to existing entities
    • Input: observations (array of objects)
      • Each object contains:
        • entityName (string): Target entity
        • contents (string[]): New observations to add
    • Returns added observations per entity
    • Fails if entity doesn't exist
  • delete_entities

    • Remove entities and their relations
    • Input: entityNames (string[])
    • Cascading deletion of associated relations
    • No error if an entity doesn't exist; the response reports which names were not found
  • delete_observations

    • Remove specific observations from entities
    • Input: deletions (array of objects)
      • Each object contains:
        • entityName (string): Target entity
        • observations (string[]): Observations to remove
    • No error if an observation doesn't exist; the response reports how many were deleted
  • delete_relations

    • Remove specific relations from the graph
    • Input: relations (array of objects)
      • Each object contains:
        • from (string): Source entity name
        • to (string): Target entity name
        • relationType (string): Relationship type
    • No error if a relation doesn't exist; the response reports how many were deleted
  • read_graph

    • Read the entire knowledge graph
    • No input required
    • Returns complete graph structure with all entities and relations
  • search_nodes

    • Search for nodes based on query
    • Input: query (string)
    • Searches across:
      • Entity names
      • Entity types
      • Observation content
    • Returns matching entities and their relations
  • open_nodes

    • Retrieve specific nodes by name
    • Input: names (string[])
    • Returns:
      • Requested entities
      • Relations between requested entities
    • Silently skips non-existent nodes

Resources

  • knowledge-graph (memory://knowledge-graph)
    • The full knowledge graph as a readable MCP Resource
    • MIME type: application/json
    • Returns the same shape as read_graph (entities and relations)
    • Mutation tools (create_entities, create_relations, add_observations, delete_entities, delete_observations, delete_relations) emit notifications/resources/updated for this URI, so subscribed clients see live changes

Usage with Claude Desktop

Setup

Add this to your claude_desktop_config.json:

Docker
{
  "mcpServers": {
    "memory": {
      "command": "docker",
      "args": ["run", "-i", "-v", "claude-memory:/app/dist", "--rm", "mcp/memory"]
    }
  }
}
NPX
{
  "mcpServers": {
    "memory": {
      "command": "npx",
      "args": [
        "-y",
        "@modelcontextprotocol/server-memory"
      ]
    }
  }
}

On Windows, use cmd /c to launch npx:

{
  "mcpServers": {
    "memory": {
      "command": "cmd",
      "args": [
        "/c",
        "npx",
        "-y",
        "@modelcontextprotocol/server-memory"
      ]
    }
  }
}
NPX with custom setting

The server can be configured using the following environment variables:

{
  "mcpServers": {
    "memory": {
      "command": "npx",
      "args": [
        "-y",
        "@modelcontextprotocol/server-memory"
      ],
      "env": {
        "MEMORY_FILE_PATH": "/path/to/custom/memory.jsonl"
      }
    }
  }
}

On Windows, use:

{
  "mcpServers": {
    "memory": {
      "command": "cmd",
      "args": [
        "/c",
        "npx",
        "-y",
        "@modelcontextprotocol/server-memory"
      ],
      "env": {
        "MEMORY_FILE_PATH": "/path/to/custom/memory.jsonl"
      }
    }
  }
}
  • MEMORY_FILE_PATH: Path to the memory storage JSONL file (default: memory.jsonl in the server directory)
Sharing one memory file between clients

Each MCP client starts its own server process, so two clients using the same MEMORY_FILE_PATH (or both using the default) are two processes writing one file. Every write tool takes an exclusive lock file, <memory file>.lock, next to the memory file while it reads, changes and saves the graph, so writes from different processes take turns and none is lost. The lock file exists only while a write is in progress, so the directory holding the memory file must be writable (it already must be, for the atomic save).

  • A lock left behind by a server that crashed mid-write is removed automatically: at once if its process is known to have exited on the same machine, otherwise once it has gone 30 seconds without being refreshed (a server holding the lock refreshes it every 15 seconds while it works). Only one waiting server breaks a stale lock at a time, guarded by a momentary <memory file>.lock.break file.
  • A write that cannot get the lock within 60 seconds fails with a tool error rather than overwriting the file.
  • The lock relies on exclusive file creation, which local filesystems provide; a network filesystem that does not honour it cannot be shared safely this way.

VS Code Installation Instructions

For quick installation, use one of the one-click installation buttons below:

Install with NPX in VS Code Install with NPX in VS Code Insiders

Install with Docker in VS Code Install with Docker in VS Code Insiders

For manual installation, you can configure the MCP server using one of these methods:

Method 1: User Configuration (Recommended) Add the configuration to your user-level MCP configuration file. Open the Command Palette (Ctrl + Shift + P) and run MCP: Open User Configuration. This will open your user mcp.json file where you can add the server configuration.

Method 2: Workspace Configuration Alternatively, you can add the configuration to a file called .vscode/mcp.json in your workspace. This will allow you to share the configuration with others.

For more details about MCP configuration in VS Code, see the official VS Code MCP documentation.

NPX
{
  "servers": {
    "memory": {
      "command": "npx",
      "args": [
        "-y",
        "@modelcontextprotocol/server-memory"
      ]
    }
  }
}

On Windows, use:

{
  "servers": {
    "memory": {
      "command": "cmd",
      "args": [
        "/c",
        "npx",
        "-y",
        "@modelcontextprotocol/server-memory"
      ]
    }
  }
}
Docker
{
  "servers": {
    "memory": {
      "command": "docker",
      "args": [
        "run",
        "-i",
        "-v",
        "claude-memory:/app/dist",
        "--rm",
        "mcp/memory"
      ]
    }
  }
}

System Prompt

The prompt for utilizing memory depends on the use case. Changing the prompt will help the model determine the frequency and types of memories created.

Here is an example prompt for chat personalization. You could use this prompt in the "Custom Instructions" field of a Claude.ai Project.

Follow these steps for each interaction:

1. User Identification:
   - You should assume that you are interacting with default_user
   - If you have not identified default_user, proactively try to do so.

2. 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"

3. 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)

4. 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
     b) Connect them to the current entities using relations
     c) Store facts about them as observations

Building

Docker:

docker build -t mcp/memory -f src/memory/Dockerfile . 

For Awareness: a prior mcp/memory volume contains an index.js file that could be overwritten by the new container. If you are using a docker volume for storage, delete the old docker volume's index.js file before starting the new container.

License

This MCP server is licensed under the MIT License. This means you are free to use, modify, and distribute the software, subject to the terms and conditions of the MIT License. For more details, please see the LICENSE file in the project repository.

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