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Distribution Network Structure Planning Based on Multi-population Immune Genetic Algorithm
引用本文:ZHOU Quan,SUN Cai-xin,ZHANG Xiao-xing,DENG Qun,LIU Yu-ming. Distribution Network Structure Planning Based on Multi-population Immune Genetic Algorithm[J]. 保鲜与加工, 2005, 0(4): 36-41
作者姓名:ZHOU Quan  SUN Cai-xin  ZHANG Xiao-xing  DENG Qun  LIU Yu-ming
摘    要:Distribution Network Structure planning is a complex combinatorial optimization problem, which is difficult to solve properly by using traditional optimization methods. The authors put forward Multiple Population Immune Genetic Algorithm (MPIGA)for optimal planning of distribution network structure, and do optimal search to different aspects of optimization goals. During the genetic evolution process, biologic immune mechanism is introduced to do some immune operator operation on chromosomes of each population, which can interact mutually by the shift of excellent units. By this way, it can effectively prevent population retrogression, promote diversity and the whole optimal searching ability of genetic algorithm. In order to minimize network annual expenditure, a mathematic model is established. The optimal solution is obtained by this algorithm, which has been illustrated effectively by specific examples at the same time.

关 键 词:distribution network structure  optimal planning  immune genetic algorithm  multi population
修稿时间:2004-12-19

Distribution Network Structure Planning Based on Multi-population Immune Genetic Algorithm
ZHOU Quan,SUN Cai-xin,ZHANG Xiao-xing,DENG Qun,LIU Yu-ming. Distribution Network Structure Planning Based on Multi-population Immune Genetic Algorithm[J]. Storage & Process, 2005, 0(4): 36-41
Authors:ZHOU Quan  SUN Cai-xin  ZHANG Xiao-xing  DENG Qun  LIU Yu-ming
Abstract:Distribution Network Structure planning is a complex combinatorial optimization problem, which is difficult to solve properly by using traditional optimization methods. The authors put forward Multiple Population Immune Genetic Algorithm (MPIGA)for optimal planning of distribution network structure, and do optimal search to different aspects of optimization goals. During the genetic evolution process, biologic immune mechanism is introduced to do some immune operator operation on chromosomes of each population, which can interact mutually by the shift of excellent units. By this way, it can effectively prevent population retrogression, promote diversity and the whole optimal searching ability of genetic algorithm. In order to minimize network annual expenditure, a mathematic model is established. The optimal solution is obtained by this algorithm, which has been illustrated effectively by specific examples at the same time.
Keywords:distribution network structure  optimal planning  immune genetic algorithm  multi population
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