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首页> 外文期刊>Engineering Applications of Artificial Intelligence >Evolutionary algorithms for VLSI multi-objective netlist partitioning
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Evolutionary algorithms for VLSI multi-objective netlist partitioning

机译:VLSI多目标网表分区的进化算法

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摘要

The problem of partitioning appears in several areas ranging from VLSI, parallel programming to molecular biology. The interest in finding an optimal partition, especially in VLSI, has been a hot issue in recent years. In VLSI circuit partitioning, the problem of obtaining a minimum cut is of prime importance. With current trends, partitioning with multiple objectives which includes power, delay and area, in addition to minimum cut is in vogue. In this paper, we engineer three iterative heuristics for the optimization of VLSI netlist bi-partitioning. These heuristics are based on Genetic Algorithms (GAs), Tabu Search (TS) and Simulated Evolution (SimE). Fuzzy rules are incorporated in order to handle the multi-objective cost function. For SimE, fuzzy goodness functions are designed for delay and power, and proved efficient. A series of experiments are performed to evaluate the efficiency of the algorithms. ISCAS-85/89 benchmark circuits are used and experimental results are reported and analyzed to compare the performance of GA, TS and SimE. Further, we compared the results of the iterative heuristics with a modified FM algorithm, named PowerFM, which targets power optimization. PowerFM performs better in terms of power dissipation for smaller circuits. For larger sized circuits, SimE outperforms PowerFM in terms of all the three objectives, delay, number of nets cut, and power dissipation.
机译:分区问题出现在从VLSI,并行编程到分子生物学的多个领域。近年来,对于找到最佳分区(尤其是在VLSI中)的兴趣一直是热门话题。在VLSI电路分区中,获得最小切割的问题至关重要。根据当前的趋势,除了最小限度的切割之外,具有多个目标的分区正在流行,包括功率,延迟和面积。在本文中,我们设计了三种迭代启发式方法来优化VLSI网表双向划分。这些启发式算法基于遗传算法(GA),禁忌搜索(TS)和模拟进化(SimE)。为了处理多目标成本函数,引入了模糊规则。对于SimE,模糊优度函数被设计用于延迟和功率,并被证明是有效的。进行了一系列实验以评估算法的效率。使用ISCAS-85 / 89基准电路,并报告和分析实验结果以比较GA,TS和SimE的性能。此外,我们将迭代启发式方法的结果与针对功率优化的改进FM算法PowerFM进行了比较。对于较小的电路,PowerFM在功耗方面表现更好。对于更大尺寸的电路,SimE在三个目标,延迟,削减的网数和功耗方面都优于PowerFM。

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