基于目标惩罚函数的零约束优化问题的进化算法

Z. Meng, M. Jiang, C. Dang
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引用次数: 4

摘要

在许多进化算法中,使用罚函数作为适应度函数来解决许多整数优化问题是一种非常重要的方法。本文首先对整数约束优化问题定义了一个新的目标惩罚函数,并给出了它的一些性质。然后,从理论上给出了整数约束优化问题的全局收敛算法。此外,基于目标惩罚函数,提出了一种求解0 - 1约束优化问题的简单进化算法。最后,若干算例的数值结果表明,所提出的进化算法对于若干0 - 1优化问题具有良好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolutionary Algorithm for Zero-One Constrained Optimization Problems Based on Objective Penalty Function
In many evolutionary algorithms, it is very important way to use penalty function as a fitness function in order to solve many integer optimization problems. In this paper, we first define a new objective penalty function and give its some properties for integer constrained optimization problems. Then, we present an algorithm with global convergence for integer constrained optimization problems in theory. Moreover, based on the objective penalty function, a simple novel evolutionary algorithm to solve the zero-one constrained optimization problems is developed. Finally, numerical results of several examples show that the proposed evolutionary algorithm has a good performance for some zero-one optimization problems.
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