物理设计自动化的最新进展和挑战

M. Johann
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摘要

只提供摘要形式。使微电子工业得以发展的一个关键因素是为设计自动化创造了复杂的软件工具。制造能力的巨大发展主要是由晶体管的缩小推动的。因此,除了可以集成越来越多的设备之外,它们也变得越来越快。然而,如果人类设计师不能以一种越来越有效的方式指定高度复杂项目的不同功能、结构和物理特性,那么这种奇妙的制造能力就没有多大用处。这就是为什么最传统的设计问题,如放置,路由,栅极尺寸,今天仍然是热门话题。在过去的几年里,所有这些学科重新获得了很多关注,并取得了重大进展,有时甚至是激进的进展。在这篇演讲中,我们回顾了这类问题的基本概念,这些问题通常需要组合优化,并涵盖了过去十年在放置和路由方面的一些最重要的成就。通过工业界和学术界的共同努力,通过发布切合实际的基准集和促进若干研究竞赛,使它们成为可能。最后,我们可以更好地理解当前必须面对的一些挑战,以跟上下一个大设计的步伐,突出该领域研究的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent advances and challenges in physical design automation
Summary form only given. A key factor that enabled the development of the microelectronics industry was the creation of sophisticated software tools for design automation. The tremendous evolution of manufacturing capacity was primarily fuelled by scaling down the transistors. Thus, besides being possible to integrate an increasing number of devices, they have also become increasingly faster. However, this wonderful manufacturing capacity would be of little use if it were not possible for human designers to specify the different functions, structures and physical characteristics of highly complex projects in a progressively more efficient way. That is why the most traditional design problems such as placement, routing, gate sizing, are still hot topics today. In the last years, all these subjects regained a lot of attention and experimented significant, sometimes radical, advancements. In this talk we review basic concepts at the definition of such problems, which in general require combinatory optimization, and cover some of the most important achievements in placement and routing in the last decade. They were made possible by the combined effort of industry and academia with the release of realistic benchmark sets and the promotion of several research contests. Finally, we can better understand some of the current challenges that must be faced to keep pace with the next big designs, highlighting the relevance of research in this area.
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