Automated Design Optimization for CMOS Rectifier Using Deep Neural Network (DNN)

Heng Wah Ho, W. W. Lau
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引用次数: 2

Abstract

A previously designed CMOS rectifier is optimized with the help of Deep Neural Network (DNN) to identify maximum power conversion efficiency (PCE) for various input RF power (from antenna) and load conditions. The condition for an additional improvement of 1.8% in PCE is identified and cross validated with simulation result.
基于深度神经网络(DNN)的CMOS整流器自动设计优化
在深度神经网络(DNN)的帮助下,对先前设计的CMOS整流器进行了优化,以确定各种输入RF功率(来自天线)和负载条件下的最大功率转换效率(PCE)。确定了PCE再提高1.8%的条件,并与仿真结果进行了交叉验证。
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