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Explaining Explanations: Axiomatic Feature Interactions for Deep Networks
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Explaining Explanations: Axiomatic Feature Interactions for Deep Networks
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Recent work has shown great promise in explaining neural network behavior. In particular, feature attribution methods explain which features were most important to a model's prediction on a given input. However, for many tasks, simply knowing which features were important to a model's prediction may not provide enough insight to understand model behavior. The interactions between features within the model may better help us understand not only the model, but also why certain features are more important than others. In this work, we present Integrated Hessians, an extension of Integrated Gradients that explains pairwise feature interactions in neural networks. Integrated Hessians overcomes several theoretical limitations of previous methods to explain interactions, and unlike such previous methods is not limited to a specific architecture or class of neural network. Additionally, we find that our method is faster than existing methods when the number of features is large, and outperforms previous methods on existing quantitative benchmarks. Code available at https://github.com/suinleelab/path_explain
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Cited by 2 Pith papers
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Restricted Dynamic Geometric Complexity: Path-Space Reduction and M\"obius--Jacobi Response
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Restricted Dynamic Geometric Complexity: Path-Space Reduction and M\"obius--Jacobi Response
Restricted dynamic geometric complexity measures the intrinsic affine-invariant path distance from an initial metric to a condition-number target when the metric family is structurally constrained, with exact LMI and ...
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