Faster and better spectral algorithms for multi-way partitioning

Jan-Yang Chang, Yu-Chen Liu, Ting-Chi Wang
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引用次数: 1

Abstract

In this paper two faster and better spectral algorithms are presented for the multi-way circuit partitioning problem with the objective of minimizing the scaled cost. The problem can be approximately transformed into the vector partitioning problem by mapping each circuit component to a multi-dimensional vector. The common key idea of our two algorithms for solving the vector partitioning problem is to first treat the set of vectors as a cluster; and then repeatedly select a cluster which gives the maximum cost improvement among all the current clusters, and partition it into two new clusters. The bipartitioning process is continued until the number of clusters is equal to the required number of partitions. The experimental results indicate that the two algorithms significantly outperform MELO+DP-RP [3] in both the run time and partitioning result.
更快更好的多路划分谱算法
本文针对多路电路划分问题,提出了两种更快、更好的频谱算法,以最小化比例代价为目标。该问题可以近似地转化为矢量划分问题,将每个电路元件映射到一个多维矢量上。这两种算法解决向量划分问题的共同关键思想是首先将向量集视为一个聚类;然后在所有现有集群中反复选择一个成本改进最大的集群,并将其划分为两个新集群。双分区过程将继续进行,直到集群数量等于所需的分区数量。实验结果表明,两种算法在运行时间和分区结果上都明显优于MELO+DP-RP[3]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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