Metadata-Version: 2.1
Name: onemetric
Version: 0.1.0
Summary: Metrics Library to Evaluate Machine Learning Algorithms in Python
Home-page: https://github.com/SkalskiP/onemetric
Author: Piotr Skalski
Author-email: piotr.skalski92@gmail.com
License: BSD
Platform: UNKNOWN
Classifier: Development Status :: 5 - Production/Stable
Classifier: Intended Audience :: Developers
Classifier: Intended Audience :: Science/Research
Classifier: License :: OSI Approved :: BSD License
Classifier: Programming Language :: Python :: 3
Classifier: Programming Language :: Python :: 3.7
Classifier: Programming Language :: Python :: 3.8
Classifier: Programming Language :: Python :: 3.9
Classifier: Programming Language :: Python :: 3 :: Only
Classifier: Topic :: Software Development
Classifier: Topic :: Scientific/Engineering
Classifier: Typing :: Typed
Classifier: Operating System :: Microsoft :: Windows
Classifier: Operating System :: POSIX
Classifier: Operating System :: Unix
Classifier: Operating System :: MacOS
Requires-Python: >=3.7
Description-Content-Type: text/markdown
Requires-Dist: Pillow
Requires-Dist: numpy
Requires-Dist: seaborn
Requires-Dist: matplotlib
Provides-Extra: tests
Requires-Dist: pytest ; extra == 'tests'
Requires-Dist: pytest-cov ; extra == 'tests'
Requires-Dist: coverage ; extra == 'tests'

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<h1 align="center">onemetric</h1>

<p align="center"> 
    <img width="150" src="https://onemetric-images.s3.eu-central-1.amazonaws.com/favicon.png" alt="Logo">
</p>

## Installation

```terminal
pip install onemetric
```

## Documentation

The official documentation is hosted on Github Pages: https://skalskip.github.io/onemetric

## Contribute

Feel free to file [issues](https://github.com/SkalskiP/onemetric/issues) or [pull requests](https://github.com/SkalskiP/onemetric/pulls). Let us know what metrics should be part of onemetric!

## Citation

Please cite onemetric in your publications if this is useful for your research. Here is an example BibTeX entry:

```BibTeX
@MISC{onemetric,
   author = {Piotr Skalski},
   title = {{onemetric}},
   howpublished = "\url{https://github.com/SkalskiP/onemetric/}",
   year = {2021},
}
```

## License

This project is licensed under the BSD 3 - see the [LICENSE][1] file for details.

## Acknowledgements

Building onemetric would have been much more difficult if not for the efforts and persistence of many open-source developers. Their ideas were the help and inspiration in creating this library. **Thank you!**

1. Confusion Matrix for Object Detection [link](2) by [kaanakan](3).
2. Mean Average Precision for Object Detection [link](4) by [bes-dev](5).
3. YOLOv3 in PyTorch [link](6) by [ultralytics](7).

[1]: https://github.com/SkalskiP/onemetric/blob/master/LICENSE
[2]: https://github.com/kaanakan/object_detection_confusion_matrix
[3]: https://github.com/kaanakan
[4]: https://github.com/bes-dev/mean_average_precision
[5]: https://github.com/bes-dev
[6]: https://github.com/ultralytics/yolov3
[7]: https://github.com/ultralytics


