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A Python library to parse Valetudo map data returning a PIL Image object.

Project description

Python-package-valetudo-map-parser


What is it:

❗This is an unofficial project and is not created, maintained, or in any sense linked to valetudo.cloud

A Python library that converts Valetudo vacuum JSON map data into PIL (Python Imaging Library) images. This package is primarily developed for and used in the MQTT Vacuum Camera project.


Features:

  • Processes map data from Valetudo-compatible robot vacuums
  • Supports both Hypfer and Rand256 vacuum data formats
  • Renders comprehensive map visualizations including:
    • Walls and obstacles
    • Robot position and cleaning path
    • Room segments and boundaries
    • Cleaning zones
    • Virtual restrictions
    • LiDAR data
    • Mop mode path rendering (Hypfer only)
  • Provides auto-cropping and dynamic zooming
  • Supports image rotation and aspect ratio management
  • Enables custom color schemes
  • Handles multilingual labels
  • Implements thread-safe data sharing

Installation:

pip install valetudo_map_parser

Requirements:

  • Python 3.13 or higher
  • Dependencies:
    • Pillow (PIL) for image processing
    • NumPy for array operations
    • MvcRender Specific C implementation of drawings

Usage:

The library is configured using a dictionary format. See our sample code for implementation examples.

Key functionalities:

  • Decodes raw data from Rand256 format
  • Processes JSON data from compatible vacuums
  • Returns Pillow PNG images
  • Provides calibration and room property extraction
  • Supports asynchronous operations

Development Status:

Current version: 0.2.4b3

  • Full functionality available in versions >= 0.2.0
  • Actively maintained and enhanced
  • Uses Poetry for dependency management
  • Implements comprehensive testing
  • Enforces code quality through ruff, isort, and pylint (10.00/10)

Recent Updates (v0.2.4):

  • Fixed Critical Calibration Bug: Calibration points now correctly update when map rotation changes
  • Fixed Rotation Change Handling: Prevents errors when changing rotation with saved floor data
  • Multi-Floor Support: Enhanced floor data management with add/update/remove methods
  • Mop Path Customization: Configurable mop path width, color, and transparency (Hypfer vacuums)
  • Dock State Display: Shows dock operations (e.g., "mop cleaning") in status text
  • Improved Compatibility: Python 3.12+ support for Home Assistant integration
  • Performance: Optimized image generation (~450ms average)
  • Code Quality: Refactored for better maintainability and reduced complexity

Contributing:

Contributions are welcome! You can help by:

  • Submitting code improvements
  • Enhancing documentation
  • Reporting issues
  • Suggesting new features

Disclaimer:

This project is provided "as is" without warranty of any kind. Users assume all risks associated with its use.

License:

Apache-2.0


For more information about Valetudo, visit valetudo.cloud Integration with Home Assistant: MQTT Vacuum Camera

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