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Can We Trust Fair-AI?

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  • معلومة اضافية
    • Contributors:
      Ruggieri, Salvatore; Alvarez, Jose M.; Pugnana, Andrea; State, Laura; Turini, Franco
    • بيانات النشر:
      AAAI Press
      USA
      Washington, DC
    • الموضوع:
      2023
    • Collection:
      Scuola Normale Superiore: CINECA IRIS
    • نبذة مختصرة :
      There is a fast-growing literature in addressing the fairness of AI models (fair-AI), with a continuous stream of new concep- tual frameworks, methods, and tools. How much can we trust them? How much do they actually impact society? We take a critical focus on fair-AI and survey issues, simplifications, and mistakes that researchers and practitioners often under- estimate, which in turn can undermine the trust on fair-AI and limit its contribution to society. In particular, we discuss the hyper-focus on fairness metrics and on optimizing their average performances. We instantiate this observation by dis- cussing the Yule’s effect of fair-AI tools: being fair on average does not imply being fair in contexts that matter. We conclude that the use of fair-AI methods should be complemented with the design, development, and verification practices that are commonly summarized under the umbrella of trustworthy AI
    • Relation:
      info:eu-repo/semantics/altIdentifier/isbn/978-1-57735-880-0; ispartofbook:PROCEEDINGS OF THE 37th AAAI CONFERENCE ON ARTIFICIAL INTELLIGENCE; 37th AAAI Conference on Artificial Intelligence; volume:37; issue:13; firstpage:15421; lastpage:15430; numberofpages:10; serie:PROCEEDINGS OF THE . AAAI CONFERENCE ON ARTIFICIAL INTELLIGENCE; https://hdl.handle.net/11384/136444; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85150961092; https://ojs.aaai.org/index.php/AAAI/article/view/26798
    • الرقم المعرف:
      10.1609/aaai.v37i13.26798
    • Rights:
      info:eu-repo/semantics/openAccess
    • الرقم المعرف:
      edsbas.6840CFE1