Cpt Analysis Server
БесплатноНе проверенConnects Claude Desktop to a healthcare claims database for natural-language analysis of CPT codes, reimbursement rates, payer performance, and denial patterns.
Описание
Connects Claude Desktop to a healthcare claims database for natural-language analysis of CPT codes, reimbursement rates, payer performance, and denial patterns.
README
An MCP (Model Context Protocol) server that connects Claude Desktop to a healthcare claims database, enabling natural-language analysis of CPT codes, reimbursement rates, payer performance, and denial patterns.
Built to demonstrate how MCP bridges the gap between AI assistants and domain-specific data systems in the healthcare/PBM space.
Architecture
Claude Desktop MCP Server (Python) SQLite Database
┌──────────────┐ JSON-RPC ┌─────────────────┐ ┌───────────────┐
│ │◄──── stdio ────►│ │◄── queries ──►│ cpt_codes │
│ User asks │ │ 6 Tools │ │ payers │
│ questions │ │ 3 Resources │ │ payer_rates │
│ in plain │ │ 2 Prompts │ │ claims (10K) │
│ English │ │ │ │ denial_reasons│
└──────────────┘ └─────────────────┘ └───────────────┘
How it works:
- Claude Desktop starts this server as a subprocess
- The server announces its tools (functions Claude can call)
- When you ask a question, Claude decides which tool(s) to use
- The server queries SQLite and returns structured results
- Claude interprets the data and responds in natural language
What's Inside
Tools (Functions Claude Can Call)
| Tool | Purpose | Example Question |
|---|---|---|
lookup_cpt_code |
Get details for a specific CPT code | "What is CPT 27447?" |
query_claims |
Filter and search claims data | "Show me denied surgery claims over $5000" |
analyze_reimbursement |
Compare rates across payers | "How do payers compare for radiology rates?" |
detect_anomalies |
Find pricing outliers | "Where are we billing way above the allowed amount?" |
denial_analysis |
Investigate denial patterns | "What are the top denial reasons for Aetna?" |
compare_payers |
Side-by-side payer comparison | "Which payer pays the most for cardiac procedures?" |
financial_summary |
Revenue and collection reporting | "Show me financials by category for Q2" |
Resources (Context Claude Can Read)
schema://claims-database— Full database schema with column descriptionsschema://cpt-categories— CPT code category reference with rate rangesdata://summary-stats— Quick overview of the entire dataset
Prompts (Structured Analysis Templates)
analyze-claim— Step-by-step analysis of a specific claimrate-review— Comprehensive payer/category rate review for contract negotiations
Dataset
- 70 CPT codes across 5 categories (E&M, Surgery, Radiology, Pathology, Medicine)
- 7 payers (5 commercial + Medicare + Medicaid)
- 10,000 claims with realistic denial patterns (~15% denial rate)
- 490 payer rate schedules (7 payers × 70 codes)
- Medicare rates based on 2024 CMS Physician Fee Schedule
- CARC denial reason codes from real 835 remittance standards
Setup
Prerequisites
- Python 3.11+
- Claude Desktop (with MCP support)
Install
git clone https://github.com/Ishaan24687/cpt-analysis-mcp-server.git
cd cpt-analysis-mcp-server
pip install -r requirements.txt
Seed the Database
python -m src.seed_data
This creates cpt_analysis.db with all reference data and synthetic claims.
Connect to Claude Desktop
- Open Claude Desktop settings
- Go to Developer > Edit Config
- Add the server config from
claude_desktop_config.json:
{
"mcpServers": {
"cpt-analysis": {
"command": "python",
"args": ["-m", "src.server"],
"cwd": "/path/to/cpt-analysis-mcp-server"
}
}
}
- Restart Claude Desktop
- You should see "cpt-analysis" in the MCP tools list (hammer icon)
Demo Conversations
Once connected, try these in Claude Desktop:
Overview:
"Give me an overview of the claims data"
CPT Lookup:
"What is CPT 27447 and how much do different payers reimburse for it?"
Denial Investigation:
"Which CPT codes have the highest denial rates? What are the main reasons?"
Payer Comparison:
"Compare all payers for surgery procedures — who pays the best and who denies the most?"
Anomaly Detection:
"Find pricing anomalies where we're billing more than 3x the allowed amount"
Contract Negotiation Prep:
"I'm preparing for a rate negotiation with UnitedHealthcare for radiology services. Give me a complete analysis."
Project Structure
cpt-analysis-mcp-server/
├── src/
│ ├── __init__.py
│ ├── server.py # MCP server — tools, resources, prompts
│ ├── database.py # SQLite schema and connection management
│ └── seed_data.py # Realistic healthcare data generation
├── claude_desktop_config.json
├── requirements.txt
├── .gitignore
└── README.md
Why MCP?
Traditional approach: Copy data from database → paste into ChatGPT → get generic answer.
MCP approach: Ask Claude a question → Claude queries your actual database → get a specific, data-backed answer.
MCP turns an AI assistant from a "smart text generator" into a "smart analyst with direct access to your systems." For healthcare operations teams dealing with claims data, this means faster root cause analysis, better contract negotiation prep, and real-time anomaly detection — all through natural conversation.
Tech Stack
- MCP SDK (
mcp[cli]) — Protocol implementation - SQLite — Zero-config database (production would use Azure SQL / PostgreSQL)
- Python 3.12 — Server runtime
- Claude Desktop — MCP host application
Установка Cpt Analysis Server
У этого сервера нет опубликованного пакета — он собирается из исходников. Открой репозиторий и следуй инструкции в README.
▸ github.com/Ishaan24687/cpt-analysis-mcp-serverFAQ
Cpt Analysis Server MCP бесплатный?
Да, Cpt Analysis Server MCP бесплатный — установка в пару кликов через Unyly без оплаты.
Нужен ли API-ключ для Cpt Analysis Server?
Нет, Cpt Analysis Server работает без API-ключей и переменных окружения.
Cpt Analysis Server — hosted или self-hosted?
Self-hosted: сервер запускается локально на твоей машине командой из раздела установки.
Как установить Cpt Analysis Server в Claude Desktop, Claude Code или Cursor?
Открой Cpt 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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