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Assembly Line Balancing Based on Double Chromosome Genetic Algorithm

Assembly Line Balancing Based on Double Chromosome Genetic Algorithm
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摘要 Aiming at assembly line balancing problem,a double chromosome genetic algorithm(DCGA)is proposed to avoid trapping in local optimum,which is a disadvantage of standard genetic algorithm(SGA).In this algorithm,there are two chromosomes of each individual,and the better one,regarded as dominant chromosome,determines the fitness.Dominant chromosome keeps excellent gene segments to speed up the convergence,and recessive chromosome maintains population diversity to get better global search ability to avoid local optimal solution.When the amounts of chromosomes are equal,the population size of DCGA is half that of SGA,which significantly reduces evolutionary time.Finally,the effectiveness is verified by experiments. Aiming at assembly line balancing problem, a double chromosome genetic algorithm (DCGA) is proposed to avoid trapping in local optimum, which is a disadvantage of standard genetic algorithm (SGA). In this algorithm, there are two chromosomes of each individual, and the better one, regarded as dominant chromosome, determines the fitness. Dominant chromosome keeps excellent gene segments to speed up the convergence, and re cessive chromosome maintains population diversity to get better global search ability to avoid local optimal solu- tion. When the amounts of chromosomes are equal, the population size of DCGA is half that of SGA, which significantly reduces evolutionary time. Finally, the effectiveness is verified by experiments.
出处 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2014年第6期622-628,共7页 南京航空航天大学学报(英文版)
基金 Supported by the 12th Five-Year Plan National Pre-research Program of China the Aerospace Science Foundation of China(20111652016) the China Postdoctoral Science Foundation(2012M511748) the Jiangsu Planned Projects for Postdoctoral Research Funds(1102053C)
关键词 double chromosome genetic algorithm assembly line balancing mathematical model global optimum double chromosome~ genetic algorithm~ assembly line balancing~ mathematical model global optimum
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