High-Accuracy and Low-latency Hybrid Stochastic Computing for Artificial Neural Network

Kun Chih Jimmy Chen, Cheng Ting Chen

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

1 Scopus citations

Abstract

Artificial Neural Networks (ANN) have shown their superiority in many applications of academia and industry. However, the hardware architecture of ANN requires a lot of operation units, which results in a high area and high-power overhead. On the other hand, the Stochastic Computing (SC) method has been proven as an efficient way to achieve low-power computing with a small area overhead. Therefore, many SC-based ANNs have been proposed in recent years. However, due to stochastic bit-stream computing, the conventional SC-based ANN designs suffer from low computing accuracy. In this work, we use the parallel counter (PC) to replace the SC-based multiply-Accumulator (MAC) to solve the accuracy problem in conventional SC-based ANN designs. Besides, we propose a finite state machine (FSM)-based activation function to improve the efficiency of the data representation change in SC-based ANN computing. Compared with the conventional SC-based ANN designs, our proposed architecture can improve computing accuracy by 82.2%. Besides, our proposed architecture can reduce 95.8% area cost and 94.2% power consumption over than non-SC-based ANN design, which achieves higher hardware efficiency.

Original languageEnglish
Title of host publicationProceedings - International SoC Design Conference 2021, ISOCC 2021
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages254-255
Number of pages2
ISBN (Electronic)9781665401746
DOIs
StatePublished - 2021
Event18th International System-on-Chip Design Conference, ISOCC 2021 - Jeju Island, Korea, Republic of
Duration: 6 Oct 20219 Oct 2021

Publication series

NameProceedings - International SoC Design Conference 2021, ISOCC 2021

Conference

Conference18th International System-on-Chip Design Conference, ISOCC 2021
Country/TerritoryKorea, Republic of
CityJeju Island
Period6/10/219/10/21

Keywords

  • ANN
  • neural network
  • parallel counter
  • stochastic computing

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