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Cyber-EDA: Estimation of Distribution Algorithms with Adaptive Memory Programming

机译:Cyber​​-EDA:采用自适应内存编程的分布算法估计

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摘要

The estimation of distribution algorithm (EDA) aims to explicitly model the probability distribution of the quality solutions to the underlying problem. By iterative filtering for quality solution from competing ones, the probability model eventually approximates the distribution of global optimum solutions. In contrast to classic evolutionary algorithms (EAs), EDA framework is flexible and is able to handle inter variable dependence, which usually imposes difficulties on classic EAs. The success of EDA relies on effective and efficient building of the probability model. This paper facilitates EDA from the adaptive memory programming (AMP) domain which has developed several improved forms of EAs using the Cyber-EA framework. The experimental result on benchmark TSP instances supports our anticipation that the AMP strategies can enhance the performance of classic EDA by deriving a better approximation for the true distribution of the target solutions.
机译:分布估计算法(EDA)旨在对潜在问题的质量解决方案的概率分布进行显式建模。通过对竞争解决方案的质量解决方案进行迭代过滤,概率模型最终近似了全局最优解决方案的分布。与经典的进化算法(EA)相比,EDA框架灵活并且能够处理变量间相关性,这通常会给经典EA带来困难。 EDA的成功取决于有效和高效地建立概率模型。本文从自适应存储器编程(AMP)领域促进了EDA,该领域已使用Cyber​​-EA框架开发了几种改进形式的EA。在基准TSP实例上的实验结果支持了我们的预期,即AMP策略可以通过对目标解决方案的真实分布进行更好的近似来增强经典EDA的性能。

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  • 来源
    《Mathematical Problems in Engineering》 |2013年第12期|132697.1-132697.11|共11页
  • 作者

    Yin Peng-Yeng; Wu Hsi-Li;

  • 作者单位

    Natl Chi Nan Univ, Dept Informat Management, Nantou 545, Taiwan.;

    Natl Chi Nan Univ, Dept Informat Management, Nantou 545, Taiwan.;

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  • 正文语种 eng
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