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4 months ago

Deep CORAL: Correlation Alignment for Deep Domain Adaptation

Baochen Sun; Kate Saenko

Deep CORAL: Correlation Alignment for Deep Domain Adaptation

Abstract

Deep neural networks are able to learn powerful representations from large quantities of labeled input data, however they cannot always generalize well across changes in input distributions. Domain adaptation algorithms have been proposed to compensate for the degradation in performance due to domain shift. In this paper, we address the case when the target domain is unlabeled, requiring unsupervised adaptation. CORAL is a "frustratingly easy" unsupervised domain adaptation method that aligns the second-order statistics of the source and target distributions with a linear transformation. Here, we extend CORAL to learn a nonlinear transformation that aligns correlations of layer activations in deep neural networks (Deep CORAL). Experiments on standard benchmark datasets show state-of-the-art performance.

Code Repositories

adapt-python/adapt
tf
Mentioned in GitHub
thuml/Transfer-Learning-Library
pytorch
Mentioned in GitHub
facebookresearch/DomainBed
pytorch
Mentioned in GitHub
lzx6/deep-coral
pytorch
Mentioned in GitHub
JorisRoels/domain-adaptive-segmentation
pytorch
Mentioned in GitHub
armavox/deepcoral-pchelkin
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
domain-generalization-on-nico-animalCORAL (Resnet-18)
Accuracy: 80.27
domain-generalization-on-nico-vehicleCORAL (Resnet-18)
Accuracy: 71.64
image-classification-on-iwildcam2020-wildsCORAL
Accuracy (Top-1): 73.3

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Deep CORAL: Correlation Alignment for Deep Domain Adaptation | Papers | HyperAI