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- W3208493659 abstract "Binarized neural networks, or BNNs, show great promise in edge-side applications with resource limited hardware, but raise the concerns of reduced accuracy. Motivated by the complex neural networks, in this paper we introduce complex representation into the BNNs and propose Binary complex neural network – a novel network design that processes binary complex inputs and weights through complex convolution, but still can harvest the extraordinary computation efficiency of BNNs. To ensure fast convergence rate, we propose novel BCNN based batch normalization and weight initialization strategies. Experimental results on image and radio signal classifications show that BCNN can achieve better accuracy compared to the original BNN models. BCNN improves BNN by strengthening its learning capability through complex representation and extending its applicability to complex-valued input data. Our code is available at https://github.com/flying-Yan/BCNN." @default.
- W3208493659 created "2021-11-08" @default.
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- W3208493659 date "2021-11-01" @default.
- W3208493659 modified "2023-10-09" @default.
- W3208493659 title "BCNN: Binary complex neural network" @default.
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- W3208493659 doi "https://doi.org/10.1016/j.micpro.2021.104359" @default.
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