Chat Analysis Server
БесплатноНе проверенChat Analysis Server — Model Context Protocol server
Описание
Chat Analysis Server — Model Context Protocol server
README
A Model Context Protocol (MCP) server that enables semantic analysis of chat conversations through vector embeddings and knowledge graphs. This server provides tools for analyzing chat data, performing semantic search, extracting concepts, and analyzing conversation patterns.
Key Features
- 🔍 Semantic Search: Find relevant messages and conversations using vector similarity
- 🕸️ Knowledge Graph: Navigate relationships between messages, concepts, and topics
- 📊 Conversation Analytics: Analyze patterns, metrics, and conversation dynamics
- 🔄 Flexible Import: Support for various chat export formats
- 🚀 MCP Integration: Easy integration with Claude and other MCP-compatible systems
Quick Start
# Install the package
pip install mcp-chat-analysis-server
# Set up configuration
cp config.example.yml config.yml
# Edit config.yml with your database settings
# Run the server
python -m mcp_chat_analysis.server
MCP Integration
Add to your claude_desktop_config.json:
{
"mcpServers": {
"chat-analysis": {
"command": "python",
"args": ["-m", "mcp_chat_analysis.server"],
"env": {
"QDRANT_URL": "http://localhost:6333",
"NEO4J_URL": "bolt://localhost:7687",
"NEO4J_USER": "neo4j",
"NEO4J_PASSWORD": "your-password"
}
}
}
}
Available Tools
import_conversations
Import and analyze chat conversations
{
"source_path": "/path/to/export.zip",
"format": "openai_native" # or html, markdown, json
}
semantic_search
Search conversations by semantic similarity
{
"query": "machine learning applications",
"limit": 10,
"min_score": 0.7
}
analyze_metrics
Analyze conversation metrics
{
"conversation_id": "conv-123",
"metrics": [
"message_frequency",
"response_times",
"topic_diversity"
]
}
extract_concepts
Extract and analyze concepts
{
"conversation_id": "conv-123",
"min_relevance": 0.5,
"max_concepts": 10
}
Architecture
See ARCHITECTURE.md for detailed diagrams and documentation of:
- System components and interactions
- Data flow and processing pipeline
- Storage schema and vector operations
- Tool integration mechanism
Prerequisites
- Python 3.8+
- Neo4j database for knowledge graph storage
- Qdrant vector database for semantic search
- sentence-transformers for embeddings
Installation
- Install the package:
pip install mcp-chat-analysis-server
- Set up databases:
# Using Docker (recommended)
docker compose up -d
- Configure the server:
cp .env.example .env
# Edit .env with your settings
Development
- Clone the repository:
git clone https://github.com/rebots-online/mcp-chat-analysis-server.git
cd mcp-chat-analysis-server
- Install development dependencies:
pip install -e ".[dev]"
- Run tests:
pytest tests/
Contributing
- Fork the repository
- Create a feature branch
- Submit a pull request
See CONTRIBUTING.md for guidelines.
License
MIT License - See LICENSE file for details.
Related Projects
Support
Установка Chat Analysis Server
У этого сервера нет опубликованного пакета — он собирается из исходников. Открой репозиторий и следуй инструкции в README.
▸ github.com/rebots-online/mcp-chat-analysis-serverFAQ
Chat Analysis Server MCP бесплатный?
Да, Chat Analysis Server MCP бесплатный — установка в пару кликов через Unyly без оплаты.
Нужен ли API-ключ для Chat Analysis Server?
Нет, Chat Analysis Server работает без API-ключей и переменных окружения.
Chat Analysis Server — hosted или self-hosted?
Self-hosted: сервер запускается локально на твоей машине командой из раздела установки.
Как установить Chat Analysis Server в Claude Desktop, Claude Code или Cursor?
Открой Chat Analysis Server на unyly.org, выбери вкладку своего клиента (Claude Desktop, Claude Code, Cursor) и нажми Install — конфиг сгенерируется автоматически, без правки JSON.
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