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首页> 外文期刊>European Journal of Operational Research >Incorporating kin selection in simulated annealing algorithm and its performance evaluation
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Incorporating kin selection in simulated annealing algorithm and its performance evaluation

机译:将亲属选择纳入模拟退火算法及其性能评估

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摘要

In this article, a new operator namely the kin selection operator is introduced, which significantly improves the performance of conventional simulated annealing (SA) algorithm. Inspired by a phenomenon of the same name observed in the evolutionary system, the proposed approach offers better solutions by sacrificing a solution for its ‘kin'. By doing so, it ensures an efficiently guided, thorough search in the neighbourhood of the best solution. Theoretical analysis is performed to show that the basic tenets of SA hold for the proposed methodology as well. Moreover, such a methodology also provides enhanced probability of survival of critical information patterns in the solution space. Experimental comparison with SA on a large number of function optimization problems is performed. In order to validate the performance of the proposed methodology over the conventional SA, a well known NP hard problem that deals with multi-level lot-sizing and scheduling problem in a PCB manufacturing firm is taken as an illustrative example.
机译:本文介绍了一种新的算子,即亲属选择算子,它大大提高了传统模拟退火(SA)算法的性能。受进化系统中观察到的同名现象启发,该方法通过牺牲其“亲属”解决方案来提供更好的解决方案。这样,它可以确保在最佳解决方案附近进行有效的指导,彻底的搜索。理论分析表明,SA的基本原理也适用于所提出的方法。而且,这种方法还提高了解决方案空间中关键信息模式生存的可能性。在大量功能优化问题上与SA进行了实验比较。为了验证所提出的方法相对于常规SA的性能,以PCB制造公司中处理多层批次大小和调度问题的众所周知的NP难题为例。

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