Stats Compass MCP server and utils
- ✓Open-source license (MIT)
- ✓Actively maintained (<30d)
- ✓Clear description
- ✓Documented (README)
claude mcp add stats-compass-mcp -- uvx stats-compass-mcp{
"mcpServers": {
"stats-compass-mcp": {
"command": "uvx",
"args": ["stats-compass-mcp"],
"env": {
"STATS_COMPASS_SERVER_URL": "<stats_compass_server_url>"
}
}
}
}STATS_COMPASS_SERVER_URLResumen de MCP Servers
<!-- mcp-name: io.github.oogunbiyi21/stats-compass -->
<div align="center">
<img src="./assets/logo/logo1.png" alt="Stats Compass Logo" width="200"/>
# stats-compass-mcp
**Turn your LLM into a data analyst.** Multiple data science tools via MCP.
[](https://badge.fury.io/py/stats-compass-mcp)
[](https://www.python.org/downloads/)
[](https://opensource.org/licenses/MIT)
</div>
<img src="./assets/demos/stats_compass_mcp_1.gif" alt="Demo: Loading and exploring data" width="800"/>
## Quick Start
```bash
pip install stats-compass-mcp
```
### Claude Desktop
```bash
stats-compass-mcp install --client claude
```
### VS Code (GitHub Copilot)
```bash
stats-compass-mcp install --client vscode
```
### Claude Code (CLI)
```bash
claude mcp add stats-compass -- uvx stats-compass-mcp run
```
> **Note:** The first connection may fail while `uvx` downloads the package. If this happens, disable and re-enable Stats Compass in your MCP settings — subsequent connections will be instant.
Restart your client and start asking questions about your data.
## What Can It Do?
<img src="./assets/demos/stats_compass_mcp_2.gif" alt="Demo: Cleaning and transforming data" width="800"/>
| Category | Examples |
|----------|----------|
| **Data Loading** | Load CSV/Excel, sample datasets, list DataFrames |
| **Cleaning** | Drop nulls, impute, dedupe, handle outliers |
| **Transforms** | Filter, groupby, pivot, encode, add columns |
| **EDA** | Describe, correlations, hypothesis tests, data quality |
| **Visualization** | Histograms, scatter, bar, ROC curves, confusion matrix |
| **ML Workflows** | Classification, regression, time series forecasting |
Run `stats-compass-mcp list-tools` to see all available tools.
## How to Prompt
Start your message with **"Use stats compass to..."** — this tells the AI to use the Stats Compass tools instead of trying to write code or use other methods.
```
Use stats compass to load ~/Downloads/sales.csv and run EDA on it
Use stats compass to find my CSV files in Downloads
Use stats compass to clean the dataset and handle missing values
Use stats compass to create a histogram of the price column
Use stats compass to test if there's a significant difference in scores between group A and B
Use stats compass to train a classification model to predict churn
```
> **Tip:** Without this prefix, some AI clients may try to write Python code or use shell commands instead of the Stats Compass tools — especially for tasks like finding files on your machine.
## Loading Files
**Local mode:** Start with "Use stats compass to load..." and provide the file path or folder.
```
Use stats compass to load the CSV at ~/Downloads/sales.csv
Use stats compass to find my data files in ~/Documents
```
**Remote/HTTP mode:** Use the upload feature (see below).
## Remote Server Mode
For Docker deployments or multi-client setups:
```bash
stats-compass-mcp serve --port 8000
```
### File Uploads
When running remotely, users can upload files via browser:
<img src="./assets/demos/upload_screenshot.png" alt="File Upload Interface" width="500"/>
```
You: I want to upload a file
AI: Open this link to upload: http://localhost:8000/upload?session_id=abc123
[Upload in browser]
You: I uploaded sales.csv
AI: ✅ Loaded sales.csv (1,000 rows × 8 columns)
```
### Downloading Results
Export DataFrames, plots, and trained models:
```
You: Save the cleaned data as a CSV
AI: ✅ Saved. Download: http://localhost:8000/exports/.../cleaned_data.csv
```
### Connect Clients to Remote Server
**VS Code** (native HTTP support):
```json
{
"servers": {
"stats-compass": { "url": "http://localhost:8000/mcp" }
}
}
```
**Claude Desktop** (via [mcp-proxy](https://github.com/sparfenyuk/mcp-proxy)):
```json
{
"mcpServers": {
"stats-compass": {
"command": "uvx",
"args": ["mcp-proxy", "--transport", "streamablehttp", "http://localhost:8000/mcp"]
}
}
}
```
## Docker
```bash
docker run -p 8000:8000 -e STATS_COMPASS_SERVER_URL=https://your-domain.com stats-compass-mcp
```
## Client Compatibility
| Client | Status |
|--------|--------|
| Claude Desktop | ✅ Recommended |
| VS Code Copilot | ✅ Supported |
| Claude Code CLI | ✅ Supported |
| Cursor | ✅ Supported |
| GPT / Gemini | ⚠️ Partial |
## Configuration
| Variable | Default | Description |
|----------|---------|-------------|
| `STATS_COMPASS_PORT` | `8000` | Server port |
| `STATS_COMPASS_SERVER_URL` | `http://localhost:8000` | Base URL for upload/download links |
| `STATS_COMPASS_MAX_UPLOAD_MB` | `50` | Max upload size |
## Development
See [CONTRIBUTING.md](CONTRIBUTING.md) for development setup.
## 🙏 Credits
Landing page template by **ArtleSa** (u/ArtleSa)
## License
MIT
Lo que la gente pregunta sobre stats-compass-mcp
¿Qué es oogunbiyi21/stats-compass-mcp?
+
oogunbiyi21/stats-compass-mcp es mcp servers para el ecosistema de Claude AI. Stats Compass MCP server and utils Tiene 17 estrellas en GitHub y su última actualización registrada es del 2026-08-26.
¿Cómo se instala stats-compass-mcp?
+
Puedes instalar stats-compass-mcp clonando el repositorio (https://github.com/oogunbiyi21/stats-compass-mcp) o siguiendo las instrucciones del README en GitHub. ClaudeWave también te ofrece bloques de instalación rápida en esta misma página.
¿Es seguro usar oogunbiyi21/stats-compass-mcp?
+
Nuestro agente de seguridad ha analizado oogunbiyi21/stats-compass-mcp y le ha asignado un Trust Score de 87/100 (tier: Trusted). Revisa el desglose completo de comprobaciones superadas y flags en esta página.
¿Quién mantiene oogunbiyi21/stats-compass-mcp?
+
oogunbiyi21/stats-compass-mcp es mantenido por oogunbiyi21. La última actividad registrada en GitHub es del 2026-08-26, con 2 issues abiertos.
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+
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