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首页> 外文期刊>International journal of applied evolutionary computation >A New Multiple Objective Evolutionary Algorithm for Reliability Optimization of Series-Parallel Systems
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A New Multiple Objective Evolutionary Algorithm for Reliability Optimization of Series-Parallel Systems

机译:串并联系统可靠性优化的新的多目标进化算法

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摘要

A new multiple objective evolutionary algorithm is proposed for reliability optimization of series-parallel systems. This algorithm uses a genetic algorithm based on rank selection and elitist reinsertion and a modified constraint handling method. Because genetic algorithms are appropriate for high-dimensional stochastic problems with many nonlinearities or discontinuities, they are suited for solving reliability design problems. The developed algorithm mainly differs from other multiple objective evolutionary algorithms in the crossover operation performed and in the fitness assignment. In the crossover step, several offspring are created through multi-parent recombination. Thus, the matingpool contains a great amount of diverse solutions. The disruptive nature of the proposed type of crossover, called subsystem rotation crossover, encourages the exploration of the search space. The paper presents a multiple objective formulation of the redundancy allocation problem. The three objective functions that are simultaneously optimized are the maximization of system reliability, the minimization of system cost, and the minimization of system weight. The proposed algorithm was thoroughly tested and a performance comparison of the proposed algorithm against one well-known multiple objective evolutionary algorithms that currently exists shows that the algorithm has a better performance when solving multiple objective redundant allocation problems.
机译:提出了一种新的多目标进化算法,用于串并联系统的可靠性优化。该算法使用基于等级选择和精英重新插入的遗传算法以及改进的约束处理方法。由于遗传算法适用于具有许多非线性或不连续性的高维随机问题,因此它们适合解决可靠性设计问题。所开发的算法与其他多目标进化算法的主要区别在于执行的交叉操作和适应性分配。在杂交步骤中,通过多亲本重组产生了几个后代。因此,配套池包含大量不同的解决方案。提议的交叉类型的破坏性(称为子系统旋转交叉)鼓励探索搜索空间。本文提出了冗余分配问题的多目标表述。同时优化的三个目标函数是系统可靠性的最大化,系统成本的最小化和系统重量的最小化。对该算法进行了彻底的测试,并将其与现有的一种已知的多目标进化算法进行性能比较,结果表明该算法在解决多目标冗余分配问题时具有更好的性能。

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