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Daniel Jin

1 accepted papers

2023

Language in a Bottle: Language Model Guided Concept Bottlenecks for Interpretable Image Classification

CVPR 2023poster

Concept Bottleneck Models (CBM) are inherently interpretable models that factor model decisions into human-readable concepts. They allow people to easily understand why a model is failing, a critical feature for high-stakes applications. CBMs require manually specified concepts and often under-perfo…