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  • title: Learning from uncertain concepts via test time interventions
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            Learning from uncertain concepts via test time interventions
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            Learning from uncertain concepts via test time interventions

            Dec 2, 2022

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            Ivaxi Sheth

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            Aamer Abdul Rahman

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            Laya Rafiee

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            About

            With neural networks applied to safety-critical applications, it has become increasingly important to understand the defining features of decision-making. Therefore, the need to uncover the black boxes to rational representational space of these neural networks is apparent. Concept bottleneck model (CBM) encourages interpretability by predicting human-understandable concepts. They predict concepts from input images and then labels from concepts. Test time intervention, a salient feature of CBM,…

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