Publication | Open Access
The hidden assumptions behind counterfactual explanations and principal reasons
212
Citations
29
References
2020
Year
Unknown Venue
Counterfactual explanations are gaining prominence within technical, legal, and business circles as a way to explain the decisions of a machine learning model. These explanations share a trait with the long-established "principal reason" explanations required by U.S. credit laws: they both explain a decision by highlighting a set of features deemed most relevant---and withholding others.
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