Use Multilayer Perceptron in Calibrating Multistage Non-linearity of Split Pipelined-ADC

Tianli Zhang, Yuefeng Cao, Fan Ye, Junyan Ren
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引用次数: 4

Abstract

A split-based background calibration technique for pipelined-ADC is proposed in this brief to handle both capacitors' mismatches and non-linearity of residue amplifiers in multiple pipeline stages. Some concepts and approaches of machine learning, say multilayer perceptron and backpropagation algorithm, are introduced to deal with the problems appearing in modeling and solving the nonlinear calibration filter. Computer simulations demonstrate an exaltation of both SNDR and SFDR for more than 50dB in a 15-bit 7-stages pipelined-ADC with non-ideal first three stages.
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多层感知器在分路管道adc多级非线性校正中的应用
本文提出了一种基于分裂的流水线adc背景校准技术,以解决多流水线级中电容失配和剩余放大器的非线性问题。介绍了机器学习的一些概念和方法,如多层感知器和反向传播算法,以解决非线性校准滤波器建模和求解中出现的问题。计算机模拟表明,在前三级不理想的情况下,15位7级流水线adc的SNDR和SFDR均提高了50dB以上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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