Papers › Equivariant Transformer Networks

Equivariant Transformer Networks

25 Jan 2019arXiv:1901.11399archive 2025-07-28

Kai Sheng Tai, Peter Bailis, Gregory Valiant

How can prior knowledge on the transformation invariances of a domain be incorporated into the architecture of a neural network? We propose Equivariant Transformers (ETs), a family of differentiable image-to-image mappings that improve the robustness of models towards pre-defined continuous transformation groups. Through the use of specially-derived canonical coordinate systems, ETs incorporate functions that are equivariant by construction with respect to these transformations. We show empirically that ETs can be flexibly composed to improve model robustness towards more complicated transformation groups in several parameters. On a real-world image classification task, ETs improve the sample efficiency of ResNet classifiers, achieving relative improvements in error rate of up to 15% in the limited data regime while increasing model parameter count by less than 1%.

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conv3x3 stanford-futuredata/equivariant-transformers/etn/networks.py official repository unverified MIT (permissive) · 6692d23a5f54d8ef · report
identity_grid stanford-futuredata/equivariant-transformers/etn/coordinates.py official repository unverified MIT (permissive) · 761b8adcc5ecff14 · report
logpolar_grid stanford-futuredata/equivariant-transformers/etn/coordinates.py official repository unverified MIT (permissive) · dc65775b942e8083 · report
polar_grid stanford-futuredata/equivariant-transformers/etn/coordinates.py official repository unverified MIT (permissive) · 1c00f43eee1d06c6 · report
projective stanford-futuredata/equivariant-transformers/datasets.py official repository unverified MIT (permissive) · 1c97aece4991619c · report

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General ClassificationImage Classificationimage-classification

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1x1 ConvolutionAverage PoolingBatch NormalizationBottleneck Residual BlockConvolutionGlobal Average PoolingKaiming InitializationMax PoolingReLUResidual BlockResidual Connection

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