Context Graph MCP Server
Click on "Install Server".
Wait a few minutes for the server to deploy. Once ready, it will show a "Started" state.
In the chat, type
@followed by the MCP server name and your instructions, e.g., "@Context Graph MCP Serverquery decisions about API design"
That's it! The server will respond to your query, and you can continue using it as needed.
Here is a step-by-step guide with screenshots.
Context Graph MCP Server
MCP server for storing and querying decision traces with semantic search using Voyage AI embeddings and ChromaDB.
Features
Semantic Search: Find decisions by meaning, not keywords
Vector Embeddings: 1024-dim embeddings via Voyage AI
Local Storage: ChromaDB for cross-platform vector database
Outcome Tracking: Mark decisions as success/failure after validation
Category Filtering: Group by framework, architecture, api, error, testing, deployment
Related MCP server: Doclea MCP
Installation
# Install dependencies
pip install -r requirements.txt
# Set Voyage AI API key
export VOYAGE_API_KEY="your_key_here"Usage
# Run server (stdio transport)
python server.pyMCP Configuration
Add to ~/.config/claude/mcp.json or .claude/mcp.json:
{
"mcpServers": {
"context-graph": {
"command": "uv",
"args": [
"--directory",
"/path/to/context-graph-mcp",
"run",
"python",
"server.py"
],
"env": {
"VOYAGE_API_KEY": "your_key_here"
}
}
}
}Tools
Tool | Purpose |
| Store decision with embedding |
| Semantic vector search |
| Get specific trace by ID |
| Update outcome status |
| List with pagination |
| Category counts |
Trace Schema
{
"id": "trace_abc123...",
"timestamp": "2025-01-15T10:30:00",
"category": "framework",
"decision": "Chose FastAPI over Flask for async support",
"outcome": "pending|success|failure",
"state": "IMPLEMENT",
"feature_id": "feat-001"
}Categories
framework- Tech stack choicesarchitecture- Design patterns, structureapi- Endpoint design, contractserror- Failure modes, fixestesting- Test strategiesdeployment- Infra decisions
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