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A quantum-inspired evolutionary approach for non-homogeneous redundancy allocation in series-parallel multi-state systems

机译:串联并行多状态系统中非均匀冗余分配的量子启发进化方法

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Redundancy allocation is a family of well-known reliability optimization problems. The non-homogeneous type of redundancy allocation in series-parallel multi-state systems is among the most difficult ones. Evolutionary algorithms (EAs) are frequently applied to solve the problem, mainly due to the huge search space and the non-closed-form system reliability. This work proposes an efficient approach that combines a quantum-inspired evolutionary algorithm (QEA) with a newly designed local search strategy. Different from the existing EAs, it is able to evolve an explicit probabilistic model to explore the search space in an iterative way. The proposed method is tested on two benchmark problems with the comparisons to the published results. The results are promising in terms of both solution quality and computation efficiency.
机译:冗余分配是一系列众所周知的可靠性优化问题。串联并联多状态系统中冗余分配的非均匀类型是最困难的类型之一。进化算法(EA)经常用于解决该问题,这主要是由于巨大的搜索空间和非封闭形式的系统可靠性。这项工作提出了一种有效的方法,将量子启发式进化算法(QEA)与新设计的本地搜索策略相结合。与现有的EA不同,它能够演化出显式的概率模型,以迭代方式探索搜索空间。该方法在两个基准问题上进行了测试,并与已发布的结果进行了比较。在解决方案质量和计算效率方面,结果都是令人鼓舞的。

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