This personal MCP server, developed for health and well-being tracking, integrates with pandas for data analysis and pydantic for data validation. It uses a command-line interface built with Click and rich for enhanced terminal output. The implementation is designed for individuals who want to track and analyze their personal health data using AI assistance, allowing for natural language queries and visualization of trends. It's particularly suited for users who prefer local data storage and processing, offering a balance between privacy and powerful analysis capabilities.
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Log a workout with details such as date, exercises, sets, and perceived effort.
Calculate safe training weights based on the exercise, base weight, days since surgery, recent pain level, and recent RPE.
Log a meal, including meal type, foods consumed, hunger level, and satisfaction level.
Check daily nutrition targets for a specific date.
Create a journal entry with content, mood, energy, sleep quality, stress level, and tags.
Analyze journal entries between a specified start and end date.