Papers › The Manifold Hypothesis for Gradient-Based Explanations

The Manifold Hypothesis for Gradient-Based Explanations

15 Jun 2022arXiv:2206.07387archive 2025-07-28

Sebastian Bordt, Uddeshya Upadhyay, Zeynep Akata, Ulrike Von Luxburg

When do gradient-based explanation algorithms provide perceptually-aligned explanations? We propose a criterion: the feature attributions need to be aligned with the tangent space of the data manifold. To provide evidence for this hypothesis, we introduce a framework based on variational autoencoders that allows to estimate and generate image manifolds. Through experiments across a range of different datasets -- MNIST, EMNIST, CIFAR10, X-ray pneumonia and Diabetic Retinopathy detection -- we demonstrate that the more a feature attribution is aligned with the tangent space of the data, the more perceptually-aligned it tends to be. We then show that the attributions provided by popular post-hoc methods such as Integrated Gradients and SmoothGrad are more strongly aligned with the data manifold than the raw gradient. Adversarial training also improves the alignment of model gradients with the data manifold. As a consequence, we suggest that explanation algorithms should actively strive to align their explanations with the data manifold. This is an extended version of a CVPR Workshop paper. Code is available at https://github.com/tml-tuebingen/explanations-manifold.

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make_layers tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/vgg.py official repository ran · our draft was wrong MIT (permissive) · eba3f5bcc6a06d36 · report
eval_AE_loop tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/utils.py official repository unverified MIT (permissive) · bd2d2bff2e0b2b6f · report
eval_classifier_loop tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/utils.py official repository unverified MIT (permissive) · 572dca447a4e2819 · report
eval_classifier_w_AE_loop tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/utils.py official repository unverified MIT (permissive) · 8988e669be77905d · report
normalize_image tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/util.py official repository unverified MIT (permissive) · c1cf41bab864699c · report
test tml-tuebingen/explanations-manifold/replicate-paper/mnist/util.py official repository unverified MIT (permissive) · b5e87b702cd8973c · report
train tml-tuebingen/explanations-manifold/replicate-paper/mnist/util.py official repository unverified MIT (permissive) · 1e7c4e327e3bd486 · report
vgg11_bn tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/vgg.py official repository unverified MIT (permissive) · e569c3a2806d4b22 · report
vgg13_bn tml-tuebingen/explanations-manifold/replicate-paper/other_datasets/vgg.py official repository unverified MIT (permissive) · baf825f46b658a7e · report
vgg_model_and_optimizer tml-tuebingen/explanations-manifold/replicate-paper/mnist/models.py official repository unverified MIT (permissive) · 79de8bd603875d34 · report
zero_one_loss tml-tuebingen/explanations-manifold/replicate-paper/mnist/util.py official repository unverified MIT (permissive) · 0f19770e77373de9 · report

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