Discrete Steps towards Approximate Computing

2022 23rd International Symposium on Quality Electronic Design (ISQED)(2022)

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摘要
As long as a computational precision above 8 bits is preferred, digital design generally outperforms analog one incurring less hardware cost. This motivates our recent studies on digital approximate computing as presented in this paper. Rather than using fixed-point numbers, discrete steps of approximation using floating-point number representations such as BFloat16 and posit formats are explored particularly. Time-domain computing is addressed as well which starts in the digital domain with discrete delay values and moves towards the analog domain under increased delay uncertainties when pushed for energy efficiency by voltage scaling. The proposed approximate arithmetic and nonlinear activation functions are further evaluated in various artificial neural networks achieving competitive Quality-of-Service compared to the state-of-the-art with full-precision computing.
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关键词
Transcendental functions,posits,time-domain computing,machine learning
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