CSCNN: Algorithm-hardware Co-design for CNN Accelerators using Centrosymmetric Filters

2021 IEEE International Symposium on High-Performance Computer Architecture (HPCA)(2021)

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摘要
Convolutional neural networks (CNNs) are at the core of many state-of-the-art deep learning models in computer vision, speech, and text processing. Training and deploying such CNN-based architectures usually require a significant amount of computational resources. Sparsity has emerged as an effective compression approach for reducing the amount of data and computation for CNNs. However, sparsity o...
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关键词
Training,Redundancy,Computer architecture,Filtering algorithms,Energy efficiency,Computational efficiency,Convolutional neural networks
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