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GA-BHTR: an improved genetic algorithm for partner selection in virtual manufacturing

机译:GA-BHTR:一种改进的遗传算法,用于虚拟制造中的合作伙伴选择

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摘要

An evolutionary genetic algorithm maintained using the binary heap and transitive reduction (GA-BHTR) method for addressing the partner selection problem (PSP) in a virtual enterprise is proposed. In order to reduce the time complexity of PSP, an algorithm for simplifying the directed acyclic graph that represents the precedence relationship among the subprojects in PSP is first designed. Different from the traditional regular GA, in order to avoid solutions from converging to a constant value early during evolution, multiple communities are used instead of a single community in GA-BHTR. The method and algorithms to distribute the individuals to the multiple communities while maximising the differences among the different communities are proposed. The concept of the catastrophe is introduced in the proposed GA-BHTR in order to avoid the solutions from converging to a local best solution too early after several generations of evolution. In order to maintain the capacity of the community (i.e. the number of individuals existing in a community) at a constant value while enhancing the diversity of the proposed GA-BHTR, an algorithm using the binary heap to maintain the data is designed. Simulation and experiments are conducted to test the effectiveness and performance of the proposed GA-BHTR for addressing PSP.
机译:提出了一种利用遗传算法和遗传算法维护的进化遗传算法,用于解决虚拟企业中的伙伴选择问题。为了降低PSP的时间复杂度,首先设计了一种算法,用于简化表示PSP中子项目之间优先级关系的有向无环图。与传统的常规GA不同,为了避免解决方案在进化过程中尽早收敛到恒定值,GA-BHTR中使用了多个社区而不是单个社区。提出了将个人分配到多个社区,同时最大化不同社区之间的差异的方法和算法。在拟议的GA-BHTR中引入了巨灾概念,以避免在经过几代进化后过早地将解决方案收敛到局部最佳解决方案。为了将社区的容量(即社区中存在的个体数量)维持在恒定值,同时提高所提出的GA-BHTR的多样性,设计了一种使用二进制堆维护数据的算法。进行仿真和实验以测试所提出的GA-BHTR用于解决PSP的有效性和性能。

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