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Hybrid Composition with IdleBlock: More Efficient Networks for Image Recognition

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arxiv 1911.08609 v1 pith:M5YQVXXH submitted 2019-11-19 cs.CV

Hybrid Composition with IdleBlock: More Efficient Networks for Image Recognition

classification cs.CV
keywords networkscompositionefficienthybrididleblockarchitecturedesignneural
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We propose a new building block, IdleBlock, which naturally prunes connections within the block. To fully utilize the IdleBlock we break the tradition of monotonic design in state-of-the-art networks, and introducing hybrid composition with IdleBlock. We study hybrid composition on MobileNet v3 and EfficientNet-B0, two of the most efficient networks. Without any neural architecture search, the deeper "MobileNet v3" with hybrid composition design surpasses possibly all state-of-the-art image recognition network designed by human experts or neural architecture search algorithms. Similarly, the hybridized EfficientNet-B0 networks are more efficient than previous state-of-the-art networks with similar computation budgets. These results suggest a new simpler and more efficient direction for network design and neural architecture search.

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