晶体管级接收电路的宏观建模

B. Mutnury, M. Swaminathan, M. Cases, N. Pham, D. de Araujo, E. Matoglu
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引用次数: 4

摘要

提出了一种用于晶体管级接收电路宏建模的建模方法。过去已经提出了一些接收器建模技术,但这些建模技术只处理接收器电路的负载效应,即接收器的输入特性。在这项工作中,提出的建模方法既解决了接收器的负载效应,也解决了接收器的输出特性。所提出的建模技术简单、准确,并且与晶体管级接收电路相比具有巨大的计算速度。采用递归神经网络(RNN)模型对接收机的负载效应进行建模。接收机的输出特性使用接收机静态特性和考虑到接收机时序延迟的延迟元件的组合来建模。在几个测试用例上测试了该建模方法的准确性,结果表明该方法具有良好的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macro-modeling of transistor level receiver circuits
A modeling methodology for macro-modeling transistor level receiver circuits has been proposed. A few receiver modeling techniques have been proposed in the past, but these modeling techniques only address the loading effect of the receiver circuits i.e., the input characteristics of the receivers. In this work, the proposed modeling approach addresses both the loading effect of the receiver as well as the output characteristics of the receiver. The proposed modeling technique is simple, accurate and has huge computational speed-up over transistor level receiver circuits. A recurrent neural network (RNN) model is used to model the loading effect of the receiver. The output characteristics of the receiver is modeled using a combination of receiver static characteristics and a delay element that takes into account the timing delay of the receiver. The accuracy of the modeling approach has been tested on a few test cases and results show good accuracy.
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