Iterative heuristics for multiobjective VLSI standard cell placement

S. M. Sait, Habib Youssef, A. El-Maleh, M. Minhas, King Fahd
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引用次数: 13

Abstract

We employ two iterative heuristics for the optimization of VLSI standard cell placement. These heuristics are based on genetic algorithms (GA) and tabu search (TS) respectively. We address a multiobjective version of the problem, in which power dissipation, timing performance, and interconnect wire length are optimized while layout width is taken as a constraint. Fuzzy rules are incorporated in order to design a multiobjective cost function that integrates the costs of three objectives in a single overall cost value. A series of experiments is performed to study the effect of important algorithmic parameters of GA and TS. Both the techniques are applied to ISCAS-85/89 benchmark circuits and experimental results are reported and compared.
多目标VLSI标准单元布局的迭代启发式算法
我们采用两种迭代启发式方法来优化超大规模集成电路的标准单元布局。这些启发式算法分别基于遗传算法(GA)和禁忌搜索(TS)。我们解决了一个多目标版本的问题,其中功耗,时序性能和互连线长度优化,而布局宽度作为约束。为了设计一个多目标成本函数,采用模糊规则将三个目标的成本集成到一个整体成本值中。通过一系列实验研究了遗传算法和TS算法的重要参数对电路性能的影响,并将两种算法应用于ISCAS-85/89基准电路,对实验结果进行了比较和报道。
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