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This code base is intended to serve as a starting point for interested researchers or practitioners to extend or apply the uncertainty propagation portion of the author's Master's thesis " GUM-compliant neural-network robustness verification".

License: MIT License

Python 42.75% Jupyter Notebook 57.25%
gum measurement-uncertainties neural-networks pytorch uncertainty-propagation

pytorch_gum_uncertainty_propagation's Introduction

GUM-compliant_neural-network_uncertainty-propagation

pipeline status Documentation Status codecov Latest Release DOI

This is the code written in conjunction with the first part of the author's Master's thesis on GUM-compliant neural network robustness verification. The code was written for Python 3.10.

The final submission date was 23. January 2023.

Getting started

The INSTALL guide assists in installing the required packages. After that take a look at our example script.

Documentation

The documentation can be found on ReadTheDocs.

Disclaimer

This software is developed under the sole responsibility of Björn Ludwig (the author in the following). The software is made available "as is" free of cost. The author assumes no responsibility whatsoever for its use by other parties, and makes no guarantees, expressed or implied, about its quality, reliability, safety, suitability or any other characteristic. In no event will the author be liable for any direct, indirect or consequential damage arising in connection with the use of this software.

License

pytorch_gum_uncertainty_propagation is distributed under the MIT license.

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