设计自动化算法的随机表征

Sandeep K. Kondapuram, P. Maurer
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引用次数: 0

摘要

随机生成有向无环图(dag)可用于生成各种EDA测试数据。例如,它们可用于表征信道路由算法。本文使用这些数据来描述许多不同信道路由算法的相对性能,目的是确定那些对路由性能影响最大的因素。我们的研究表明,所研究的算法之间的差异很小,被认为提供性能改进的因素被证明是不重要的,在某些情况下甚至对平均路由性能有害。这项研究表明,“众所周知”的算法根本不是真正众所周知的,需要更广泛的数据来描述我们日常使用的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Random characterization of design automation algorithms
Randomly generated Directed Acyclic Graphs (DAGs) can be used to generate various kinds of EDA test data. For example, they can be used to characterize channel routing algorithms. This paper uses such data to characterize the relative performance of a number of different channel routing algorithms, with the aim of determining those factors that have the most effect on routing performance. Our studies show very little difference in the algorithms studied Factors that have been considered to provide performance improvements are shown to be unimportant, and in some cases even detrimental to average routing performance. This study suggests that "well known" algorithms are not really well known at all, and that more extensive data is needed to characterize the algorithms that we use everyday.
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