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A MOEA/D-based multi-objective optimization algorithm for remote medical

机译:基于MOEA / D的远程医疗多目标优化算法

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摘要

Remote medical resources configuration and management involves complex combinatorial Multi-Objective Optimization problem, whose computational complexity is a typical NP problem. Based on the MOEA/D framework, this paper applies the two-way local search strategy and the new selection strategy based on domination amount and proposes the IMOEA/D framework, following which each individual produces two individuals in mutation. In this paper, by using a new selection strategy, the parent individual is compared with two mutated offspring individuals, and the more excellent one is selected for the next generation of evolution. The proposed algorithm IMOEA/D is compared with eMOEA, MOEA/D and NSGA-II, and experimental results show that for most test functions, IMOEA/D proposed is superior to the other three algorithms in terms of convergence rate and distribution. (C) 2016 Elsevier B.V. All rights reserved.
机译:远程医疗资源配置和管理涉及复杂的组合多目标优化问题,其计算复杂度是一个典型的NP问题。在MOEA / D框架的基础上,本文采用了双向的局部搜索策略和基于支配量的新选择策略,提出了IMOEA / D框架,随后每个人产生了两个突变个体。在本文中,通过使用新的选择策略,将亲本个体与两个突变后代个体进行比较,并为下一代进化选择了更优秀的个体。将提出的算法IMOEA / D与eMOEA,MOEA / D和NSGA-II进行了比较,实验结果表明,对于大多数测试功能,提出的IMOEA / D在收敛速度和分布方面都优于其他三种算法。 (C)2016 Elsevier B.V.保留所有权利。

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