Learning from the best: Rationalizing prediction by adversarial information calibration

Explaining the predictions of AI models is paramount in safety-critical applications, such as in legal or medical domains. One form of explanation for a prediction is an extractive rationale, i.e., a subset of features of an instance that lead the model to give its prediction on the instance. Previo...

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Bibliografiska uppgifter
Huvudupphovsmän: Sha, L, Camburu, OM, Lukasiewicz, T
Materialtyp: Conference item
Språk:English
Publicerad: AAAI Press 2021