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Area-efficient AdderNet hardware accelerator with merged adder tree structure

  • IEICE Electronics Express
  • Institute of Electronics, Information and Communication Engineers
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Abstract

This brief introduces an area-efficient AdderNet hardware accelerator. AdderNet replaces multiply-accumulate computations of neural network processing with addition operations, thereby reducing computational cost. However, the previous accelerator uses two adders for a kernel computation to implement an absolute value computation, which still has circuit redundancy. For the efficient AdderNet acceleration, we propose a reconfigurable kernel unit and merged adder tree structure to relax such a computational circuit overhead. The proposed merged adder tree reduces the computing area by 23-28% compared to the state-of-the-art AdderNet hardware architecture.

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Publication details

DOI
10.1587/elex.20.20230427
OpenAlex
W4388171097
Document type
article
Language
EN
Source
IEICE Electronics Express
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