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A Simple Feature Augmentation for Domain Generalization

A Simple Feature Augmentation for Domain GeneralizationPan Li1 , Da Li2,3 , Wei Li1 Shaogang Gong1, Yanwei Fu4 and Timothy M. Hospedales2,31 Queen Mary University of London2 Samsung AI Center, Cambridge3 University of Edinburgh4 Fudan University{ , , topical Domain Generalization (DG) problem askstrained models to perform well on an unseen target domainwith different data statistics from the source training do-mains. In computer vision, data Augmentation has provenone of the most effective ways of better exploiting the sourcedata to improve Domain Generalization . However, existingapproaches primarily rely on image-space data augmenta-tion, which requires careful Augmentation design, and pro-vides limited diversity of augmented data.}

A Simple Feature Augmentation for Domain Generalization Pan Li 1∗, Da Li2,3, Wei Li Shaogang Gong1, Yanwei Fu4†and Timothy M. Hospedales2,3 1Queen Mary University of London 2Samsung AI Center, Cambridge 3University of Edinburgh 4Fudan University {pan.li, wei.li, s.gong}@qmul.ac.uk dali.academic@gmail.com, yanweifu@fudan.edu.cn, …

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