Interpretable Neural Networks with Frank-Wolfe: Sparse Relevance Maps and Relevance Orderings
Jan MacDonald, Mathieu Besançon, Sebastian Pokutta
2022年份
13被引次数
2顶会引用
摘要
We study the effects of constrained optimization formulations and Frank-Wolfe algorithms for obtaining interpretable neural network predictions. Reformulating the Rate-Distortion Explanations (RDE) method for relevance attribution as a constrained optimization problem provides precise control over the sparsity of relevance maps. This enables a novel multi-rate as well as a relevance-ordering variant of RDE that both empirically outperform standard RDE and other baseline methods in a well-established comparison test. We showcase several deterministic and stochastic variants of the Frank-Wolfe algorithm and their effectiveness for RDE.
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引用它的顶会 Paper2
- Training Characteristic Functions with Reinforcement Learning: XAI-methods play Connect FourStephan Wäldchen, Sebastian Pokutta, Felix HuberICML 2022 · 被引用 9 次
- Spatial-temporal Concept based Explanation of 3D ConvNetsYing Ji, Yu Wang, Jien KatoCVPR 2023
它引用的顶会 Paper2
- Stochastic Frank-Wolfe for Constrained Finite-Sum MinimizationGeoffrey Négiar, Gideon Dresdner, Alicia Y. Tsai, Laurent El Ghaoui 等ICML 2020 · 被引用 29 次
- Simple steps are all you need: Frank-Wolfe and generalized self-concordant functionsAlejandro Carderera, Mathieu Besançon, Sebastian PokuttaNeurIPS 2021 · 被引用 22 次
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