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Leon Sixt

5 accepted papers

2022

Do Users Benefit From Interpretable Vision? A User Study, Baseline, And Dataset

ICLR 2022poster

A variety of methods exist to explain image classification models. However, whether they provide any benefit to users over simply comparing various inputs and the model’s respective predictions remains unclear. We conducted a user study (N=240) to test how such a baseline explanation technique perfo…

2020

When Explanations Lie: Why Many Modified BP Attributions Fail

ICML 2020poster

Attribution methods aim to explain a neural network’s prediction by highlighting the most relevant image areas. A popular approach is to backpropagate (BP) a custom relevance score using modified rules, rather than the gradient. We analyze an extensive set of modified BP methods: Deep Taylor Decompo…