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OpenFL-XAI: Federated learning of explainable artificial intelligence models in Python

Daole M.
•
Schiavo A.
•
Corcuera Barcena J. L.
altro
Renda A.
2023
  • journal article

Periodico
SOFTWAREX
Abstract
Artificial Intelligence (AI) systems play a significant role in manifold decision-making processes in our daily lives, making trustworthiness of AI more and more crucial for its widespread acceptance. Among others, privacy and explainability are considered key requirements for enabling trust in AI. Building on these needs, we propose a software for Federated Learning (FL) of Rule-Based Systems (RBSs): on one hand FL prioritizes user data privacy during collaborative model training. On the other hand, RBSs are deemed as interpretable-by-design models and ensure high transparency in the decision-making process. The proposed software, developed as an extension to the IntelĀ® OpenFL open-source framework, offers a viable solution for developing AI applications balancing accuracy, privacy, and interpretability.
DOI
10.1016/j.softx.2023.101505
WOS
WOS:001171020100001
Archivio
https://hdl.handle.net/11368/3120408
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85169915657
https://www.sciencedirect.com/science/article/pii/S2352711023002017
https://ricerca.unityfvg.it/handle/11368/3120408
Diritti
open access
license:creative commons
license uri:http://creativecommons.org/licenses/by/4.0/
Soggetti
  • Explainable AI

  • Federated learning

  • Linguistic fuzzy mode...

  • Rule-based systems

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