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Review: Machine learning techniques in analog/RF integrated circuit design, synthesis, layout, and test

机译:综述:模拟/射频集成电路设计,合成,布局和测试机器学习技术

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摘要

Rapid developments in semiconductor technology have substantially increased the computational capability of computers. As a result of this and recent developments in theory, machine learning (ML) techniques have become attractive in many new applications. This trend has also inspired researchers working on integrated circuit (IC) design and optimization. ML-based design approaches have gained importance to challenge/aid conventional design methods since they can be employed at different design levels, from modeling to test, to learn any nonlinear input-output relationship of any analog and radio frequency (RF) device or circuit; thus, providing fast and accurate responses to the task that they have learned. Furthermore, employment of ML techniques in analog/RF electronic design automation (EDA) tools boosts the performance of such tools. In this paper, we summarize the recent research and present a comprehensive review on ML techniques for analog/RF circuit modeling, design, synthesis, layout, and test.
机译:半导体技术的快速发展基本上增加了计算机的计算能力。由于这一和最近的发展,机器学习(ML)技术在许多新应用中都变得有吸引力。这一趋势还启发了研究集成电路(IC)设计和优化的研究人员。基于ML的设计方法已成为挑战/援助常规设计方法的重要性,因为它们可以在不同的设计水平上使用,从建模测试,学习任何模拟和射频(RF)设备或电路的任何非线性输入输出关系;因此,为他们所学到的任务提供快速准确的响应。此外,模拟/ RF电子设计自动化(EDA)工具中的ML技术的就业提升了这种工具的性能。在本文中,我们总结了最近的研究,并对ML ML技术进行了全面的综述,用于模拟/射频电路建模,设计,合成,布局和测试。

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