利用迭代改进技术去除簇的VLSI电路划分

S. Dutt, W. Deng
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引用次数: 155

摘要

基于移动的迭代改进划分方法,如fiduccia - mattheses (FM)算法和Krishnamurthy's looking - ahead (LA)算法,主要是因为它们的时间效率和易于实现而广泛应用于VLSI CAD应用。这类算法属于“局部改进”类型。它们对中小型电路产生相对高质量的结果。然而,随着VLSI电路变得越来越大,这些算法在它们上不如直接划分工具那么有效。我们提出了新的迭代改进方法,选择要移动的单元格,以将跨越分区的两个子集的集群移动到其中一个子集。新算法在保持时间效率优势的同时,显著提高了分区质量。在25个中大型ACM/SIGDA基准电路上的实验结果表明,与FM相比,切割尺寸提高了70%,平均每个电路百分比提高约25%,总切割改进约35%。它们的性能也比最近的基于位置的分区工具抛物线和频谱分区器MELO分别高出17%和23%,而且CPU时间更少。这证明了迭代改进算法在处理日益复杂的现代VLSI电路方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
VLSI circuit partitioning by cluster-removal using iterative improvement techniques
Move-based iterative improvement partitioning methods such as the Fiduccia-Mattheyses (FM) algorithm and Krishnamurthy's Look-Ahead (LA) algorithm are widely used in VLSI CAD applications largely due to their time efficiency and ease of implementation. This class of algorithms is of the "local improvement" type. They generate relatively high quality results for small and medium size circuits. However, as VLSI circuits become larger, these algorithms are not so effective on them as direct partitioning tools. We propose new iterative-improvement methods that select cells to move with a view to moving clusters that straddle the two subsets of a partition into one of the subsets. The new algorithms significantly improve partition quality while preserving the advantage of time efficiency. Experimental results on 25 medium to large size ACM/SIGDA benchmark circuits show up to 70% improvement over FM in cutsize, with an average of per-circuit percent improvements of about 25%, and a total cut improvement of about 35%. They also outperform the recent placement-based partitioning tool Paraboli and the spectral partitioner MELO by about 17% and 23%, respectively, with less CPU time. This demonstrates the potential of iterative improvement algorithms in dealing with the increasing complexity of modern VLSI circuitry.
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