conference-paper

Dual Path Binary Neural Network

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Abstract

Binary neural networks can effectively reduce the number of required parameters but might decrease the classification accuracy. To solve the problem, we propose a dual-path binary neural network (DPBNN) in this paper. Experimental results show that our DPBNN can outperform other traditional binary neural network in CIFAR-10 and SVHN dataset. The proposed network is simple, so it is suitable to be implemented on embedded systems or SoC designs.

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DOI
10.1109/isocc47750.2019.9027649
OpenAlex
W3012380922
Document type
conference-paper
Language
EN
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