Why are saliency maps noisy? cause of and solution to noisy saliency maps

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Saliency Map, the gradient of the score function with respect to the input, is the most basic technique for interpreting deep neural network decisions. However, saliency maps are often visually noisy. Although several hypotheses were proposed to account for this phenomenon, there are few works that provide rigorous analyses of noisy saliency maps. In this paper, we first propose a new hypothesis that noise may occur in saliency maps when irrelevant features pass through ReLU activation functions. Then, we propose Rectified Gradient, a method that alleviates this problem through layer-wise thresholding during backpropagation. Experiments with neural networks trained on CIFAR-10 and ImageNet showed effectiveness of our method and its superiority to other attribution methods.
Publisher
Institute of Electrical and Electronics Engineers Inc.
Issue Date
2019-10
Language
English
Citation

7th IEEE/CVF International Conference on Computer Vision Workshop, ICCVW 2019, pp.4149 - 4157

ISSN
2473-9936
DOI
10.1109/ICCVW.2019.00510
URI
http://hdl.handle.net/10203/311601
Appears in Collection
RIMS Conference Papers
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