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Robustcaps: a transformation-robust capsule network for image classification

2022-10-20 08:42:33
Sai Raam Venkataraman, S. Balasubramanian, R. Raghunatha Sarma

Abstract

Geometric transformations of the training data as well as the test data present challenges to the use of deep neural networks to vision-based learning tasks. In order to address this issue, we present a deep neural network model that exhibits the desirable property of transformation-robustness. Our model, termed RobustCaps, uses group-equivariant convolutions in an improved capsule network model. RobustCaps uses a global context-normalised procedure in its routing algorithm to learn transformation-invariant part-whole relationships within image data. This learning of such relationships allows our model to outperform both capsule and convolutional neural network baselines on transformation-robust classification tasks. Specifically, RobustCaps achieves state-of-the-art accuracies on CIFAR-10, FashionMNIST, and CIFAR-100 when the images in these datasets are subjected to train and test-time rotations and translations.

Abstract (translated)

URL

https://arxiv.org/abs/2210.11092

PDF

https://arxiv.org/pdf/2210.11092.pdf


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