ShakeDrop regularization

نویسندگان

  • Yoshihiro Yamada
  • Masakazu Iwamura
  • Koichi Kise
چکیده

This paper proposes a powerful regularization method named ShakeDrop regularization. ShakeDrop is inspired by Shake-Shake regularization that decreases error rates by disturbing learning. While Shake-Shake can be applied to only ResNeXt which has multiple branches, ShakeDrop can be applied to not only ResNeXt but also ResNet, Wide ResNet and PyramidNet in a memory efficient way. Important and interesting feature of ShakeDrop is that it strongly disturbs learning by multiplying even a negative factor to the output of a convolutional layer in the forward training pass. The effectiveness of ShakeDrop is confirmed by experiments on CIFAR-10/100 and Tiny ImageNet datasets.

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عنوان ژورنال:
  • CoRR

دوره abs/1802.02375  شماره 

صفحات  -

تاریخ انتشار 2018