# Add to your Claude Code skills
git clone https://github.com/finite-sample/rmcpGuides for using mcp servers skills like rmcp.
Last scanned: 10/11/2026
{
"issues": [
{
"file": "README.md",
"line": 150,
"type": "secret-exfiltration",
"message": "Instruction appears to send credentials/secrets to an external endpoint",
"severity": "medium"
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],
"status": "PASSED",
"scannedAt": "2026-10-11T10:38:18.702Z",
"npmAuditRan": true,
"pipAuditRan": true,
"promptInjectionRan": true
}See how rmcp compares with popular alternatives.
rmcp is an open-source mcp servers skill for AI coding assistants such as Claude Code, Codex CLI, and ChatGPT, built by finite-sample. R MCP Server. It has 213 GitHub stars.
Yes. rmcp passed SkillsLLM's automated security scan — a dependency vulnerability audit plus prompt-injection heuristics — with no high-severity issues. You can read the full report in the Security Report section on this page.
Clone the repository with "git clone https://github.com/finite-sample/rmcp" and add it to your Claude Code skills directory (see the Installation section above).
rmcp is primarily written in Python. It is open-source under finite-sample on GitHub, so you can review or fork the full source.
Yes. SkillsLLM lists many other MCP Servers skills you can browse and compare side by side. Open the MCP Servers category from the badge at the top of this page, or use the Related Skills and comparison links further down to weigh rmcp against similar tools.
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Turn conversations into comprehensive statistical analysis - A Model Context Protocol (MCP) server with 54 tools across 11 categories and 429 R packages from systematic CRAN task views. RMCP enables AI assistants to perform sophisticated statistical modeling, econometric analysis, machine learning, time series analysis, and data science tasks through natural conversation.
MCP Endpoint: https://rmcp-server-394229601724.us-central1.run.app/mcp (bearer token required)
Health Check: https://rmcp-server-394229601724.us-central1.run.app/health
pip install rmcp
rmcp start
That's it! RMCP is now ready to handle statistical analysis requests via Claude Desktop, Claude web, or any MCP client.
🎯 Working examples → | 🔧 Troubleshooting →
Linear regression, logistic models, panel data, instrumental variables → "Analyze ROI of marketing spend"
ARIMA models, decomposition, stationarity testing → "Forecast next quarter's sales"
Clustering, decision trees, random forests → "Segment customers by behavior"
T-tests, ANOVA, chi-square, normality tests → "Is my A/B test significant?"
Descriptive stats, outlier detection, correlation analysis → "Summarize this dataset"
Standardization, winsorization, lag/lead variables → "Prepare data for modeling"
Inline plots in Claude: scatter plots, histograms, heatmaps → "Show me a correlation matrix"
CSV, Excel, JSON import with validation → "Load and analyze my sales data"
Formula building, error recovery, example datasets → "Help me build a regression formula"
You: "I have sales data and marketing spend. Can you analyze the ROI?"
Claude: "I'll run a regression analysis to measure marketing effectiveness..."
Result: "Every $1 spent on marketing generates $4.70 in sales. The relationship is highly significant (p < 0.001) with R² = 0.979"
You: "Test if GDP growth and unemployment follow Okun's Law using my country data"
Claude: "I'll analyze the correlation between GDP growth and unemployment..."
Result: "Strong support for Okun's Law: correlation r = -0.944. Higher GDP growth significantly reduces unemployment."
You: "Predict customer churn using tenure and monthly charges"
Claude: "I'll build a logistic regression model for churn prediction..."
Result: "Model achieves 100% accuracy. Each additional month of tenure reduces churn risk by 11.3%. Higher charges increase churn risk by 3% per dollar."
# Core packages (install these first)
install.packages(c(
"jsonlite", "dplyr", "ggplot2", "broom", "plm", "forecast",
"randomForest", "rpart", "caret", "AER", "vars", "mgcv"
))
# Full ecosystem automatically available: Machine Learning (61 packages),
# Econometrics (55 packages), Time Series (57 packages),
# Bayesian Analysis (40 packages), and more
Package Selection: Evidence-based, using CRAN task views and download statistics
# Standard installation
pip install rmcp
# The Streamable HTTP transport ships in the base install.
# This extra adds pandas/openpyxl for Excel data handling.
pip install rmcp[http]
# Development installation
git clone https://github.com/finite-sample/rmcp.git
cd rmcp
pip install -e ".[dev]"
Add to your Claude Desktop MCP configuration:
{
"mcpServers": {
"rmcp": {
"command": "rmcp",
"args": ["start"]
}
}
}
RMCP serves the MCP Streamable HTTP transport at /mcp (spec 2025-11-25),
compatible with Claude custom connectors and OpenAI's Responses API / ChatGPT
remote MCP support. Remote deployments require a bearer token.
Production Server:
Server URL: https://rmcp-server-394229601724.us-central1.run.app/mcp
Test the connection:
# Health check
curl https://rmcp-server-394229601724.us-central1.run.app/health
# Initialize MCP session (Streamable HTTP)
curl -X POST https://rmcp-server-394229601724.us-central1.run.app/mcp \
-H "Content-Type: application/json" \
-H "Accept: application/json, text/event-stream" \
-H "Authorization: Bearer $RMCP_API_KEY" \
-d '{"jsonrpc":"2.0","id":1,"method":"initialize","params":{"protocolVersion":"2025-11-25","capabilities":{},"clientInfo":{"name":"test-client","version":"1.0"}}}'
Local HTTP server:
# Localhost (no auth required)
rmcp serve-http
# Remote bind requires a bearer token (or --allow-unauthenticated)
RMCP_API_KEY=your-secret rmcp serve-http --host 0.0.0.0 --port 8080
# Start MCP server (for Claude Desktop)
rmcp start
# Start HTTP server (for web apps)
rmcp serve-http --host 0.0.0.0 --port 8080
# Start HTTPS server (production ready)
rmcp serve-http --ssl-keyfile server.key --ssl-certfile server.crt --port 8443
# Quick HTTPS setup for development
./scripts/setup/setup_https_dev.sh && source certs/https-env.sh && rmcp serve-http
# Use configuration file
rmcp --config ~/.rmcp/config.json start
# Enable debug mode
rmcp --debug start
# Check installation
rmcp --version
# zsh — add to ~/.zshrc
eval "$(_RMCP_COMPLETE=zsh_source rmcp)"
# bash — add to ~/.bashrc (requires bash 4.4+)
eval "$(_RMCP_COMPLETE=bash_source rmcp)"
# fish — write to the completions directory
_RMCP_COMPLETE=fish_source rmcp > ~/.config/fish/completions/rmcp.fish
macOS ships bash 3.2, which is too old — click prints a warning and completion does nothing. Use zsh (the macOS default) or install a newer bash.
RMCP supports flexible configuration through environment variables, configuration files, and command-line options:
# Environment variables
export RMCP_HTTP_PORT=9000
export RMCP_R_TIMEOUT=180
export RMCP_LOG_LEVEL=DEBUG
rmcp start
# Configuration file (~/.rmcp/config.json)
{
"http": {"port": 9000},
"r": {"timeout": 180},
"logging": {"level": "DEBUG"}
}
# Docker with environment variables
docker run -e RMCP_HTTP_HOST=0.0.0.0 -e RMCP_HTTP_PORT=8000 rmcp:latest
📖 Complete Configuration Guide →
| Resource | Description |
|---|---|
| Quick Start Guide | Copy-paste ready examples with real data |
| Economic Research Examples | Panel data, time series, advanced econometrics |
| Time Series Examples | ARIMA, forecasting, decomposition |
| Image Display Examples | Inline visualizations in Claude |
| API Documentation | Auto-generated API reference |
RMCP's evaluation guide defines package, contract, protocol, and model-level release gates. The deterministic E2E suite launches a real RMCP stdio process, connects with the official MCP client, and checks exact statistical identities alon