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ShuffleNet: An Extremely Efficient Convolutional Neural ...

ShuffleNet: An Extremely Efficient Convolutional Neural Network for MobileDevicesXiangyu Zhang Xinyu Zhou Mengxiao LinJian SunMegvii Inc introduce an Extremely computation- Efficient CNNarchitecture named ShuffleNet, which is designed speciallyfor mobile devices with very limited computing power ( ,10-150 MFLOPs). The new architecture utilizes two newoperations, pointwise group convolution and channel shuf-fle, to greatly reduce computation cost while maintainingaccuracy. Experiments on ImageNet classification and MSCOCO object detection demonstrate the superior perfor-mance of ShuffleNet over other structures, lower top-1error (absolute ) than recent MobileNet [12] on Ima-geNet classification task, under the computation budget of40 MFLOPs.

architecture named ShuffleNet, which is designed specially ... the success of deep neural networks in computer vision tasks [22, 37, 29], in which model designs play an im- ... [47] employs reinforcement learning and model search to explore efficient model designs. The proposed mobile NASNet model achieves comparable performance

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  Architecture, Learning, Search, Reinforcement, Neural, Reinforcement learning

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