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cs.CV2026
Learning-State-Aware Dynamic Generative Data Augmentation on Small-Scale Datasets
Ting Xiang, Chenxi Deng, Jinhui Zhao +4
Small-scale image classification is often limited by the scarcity of training data. Generative data augmentation (GDA) based on pretrained generative models has emerged as an effec…
cs.CV2026
Invisible Clean-Label Backdoor Attacks for Generative Data Augmentation
Ting Xiang, Jinhui Zhao, Changjian Chen +1
With the rapid advancement of image generative models, generative data augmentation has become an effective way to enrich training images, especially when only small-scale datasets…