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Unimodal optimization using a genetic-programming-based method with periodic boundary conditions

机译:使用基于基于遗传编程的方法的单向优化具有周期边界条件

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摘要

This article describes a new genetic-programming-based optimization method using a multi-gene approach along with a niching strategy and periodic domain constraints. The method is referred to as Niching MG-PMA, where MG refers to multi-gene and PMA to parameter mapping approach. Although it was designed to be a multimodal optimization method, recent tests have revealed its suitability for unimodal optimization. The definition of Niching MG-PMA is provided in a detailed fashion, along with an in-depth explanation of two novelties in our implementation: the feedback of initial parameters and the domain constraints using periodic boundary conditions. These ideas can be potentially useful for other optimization techniques. The method is tested on the basis of the CEC'2015 benchmark functions. Statistical analysis shows that Niching MG-PMA performs similarly to the winners of the competition even without any parametrization towards the benchmark, indicating that the method is robust and applicable to a wide range of problems.
机译:本文介绍了一种新的基于基于遗传编程的优化方法,使用多基因方法以及幂态策略和周期性域约束。该方法被称为耐药性Mg-PMA,其中Mg是指多基因和PMA到参数映射方法。虽然它被设计为多模式优化方法,但最近的测试揭示了它适用于单峰优化的适用性。利用MG-PMA的定义以详细的方式提供,以及我们实现中两个新奇的深入解释:使用周期性边界条件的初始参数的反馈和域约束。这些想法可能对其他优化技术可能有用。该方法是基于CEC'2015基准函数进行测试的。统计分析表明,即使没有对基准测试的任何参数化,何种期MG-PMA也与竞争的获奖者同样地执行,表明该方法是坚固的并且适用于各种问题。

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