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  4. Quantus: An Explainable AI Toolkit for Responsible Evaluation of Neural Network Explanations and Beyond
 
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2023
Journal Article
Title

Quantus: An Explainable AI Toolkit for Responsible Evaluation of Neural Network Explanations and Beyond

Abstract
The evaluation of explanation methods is a research topic that has not yet been explored deeply, however, since explainability is supposed to strengthen trust in artificial intelligence, it is necessary to systematically review and compare explanation methods in order to confirm their correctness. Until now, no tool with focus on XAI evaluation exists that exhaustively and speedily allows researchers to evaluate the performance of explanations of neural network predictions. To increase transparency and reproducibility in the field, we therefore built Quantus—a comprehensive, evaluation toolkit in Python that includes a growing, wellorganised collection of evaluation metrics and tutorials for evaluating explainable methods. The toolkit has been thoroughly tested and is available under an open-source license on PyPi (or on https://github.com/understandable-machine-intelligence-lab/Quantus/).
Author(s)
Hedström, Anna
Technische Universität Berlin
Weber, Leander
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Bareeva, Dilyara
Technische Universität Berlin
Krakowczyk, Daniel G.
Universität Potsdam
Motzkus, Franz
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Samek, Wojciech  
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Lapuschkin, Sebastian Roland
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Höhne, Marina M.C.
Technische Universität Berlin
Journal
Journal of Machine Learning Research  
Funder
Bundesministerium für Bildung und Forschung  
Language
English
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Keyword(s)
  • explainability

  • open source

  • Python

  • reproducibility

  • responsible AI

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