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文章基本信息

  • 标题:On Explainable AI and Abductive Inference
  • 本地全文:下载
  • 作者:Kyrylo Medianovskyi ; Ahti-Veikko Pietarinen
  • 期刊名称:Philosophies
  • 印刷版ISSN:2409-9287
  • 出版年度:2022
  • 卷号:7
  • 期号:2
  • 页码:35
  • DOI:10.3390/philosophies7020035
  • 语种:English
  • 出版社:MDPI Publishing
  • 摘要:Modern explainable AI (XAI) methods remain far from providing human-like answers to ‘why’ questions, let alone those that satisfactorily agree with human-level understanding. Instead, the results that such methods provide boil down to sets of causal attributions. Currently, the choice of accepted attributions rests largely, if not solely, on the explainee’s understanding of the quality of explanations. The paper argues that such decisions may be transferred from a human to an XAI agent, provided that its machine-learning (ML) algorithms perform genuinely abductive inferences. The paper outlines the key predicament in the current inductive paradigm of ML and the associated XAI techniques, and sketches the desiderata for a truly participatory, second-generation XAI, which is endowed with abduction.
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