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铁路输送中平车装载问题的模型与算法

Model and Algorithm for Pallet Loading Problem in Railway Transportation

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【作者】 井祥鹤周献中徐延勇陈志伟

【Author】 JING Xianghe1,3, ZHOU Xianzhong2, XU Yanyong3, CHEN Zhiwei1 (1. Dept. of Automation, Nanjing Univ. of Sci. & Tech., Nanjing 210094; 2. School of Management & Engineering, Nanjing Univ., Nanjing 210093; 3. Department of Campaign and Command, Air Defence Command College, Zhengzhou 450052)

【机构】 南京理工大学自动化系南京大学工程管理学院防空兵指挥学院作战指挥系南京理工大学自动化系 南京210094 防空兵指挥学院作战指挥系郑州450052南京210093南京210094

【摘要】 分析了铁路运输中的平车装载问题,借鉴了FirstFit算法的思想,并引入条件变异算子,提出了求解平车装载问题的一种改进遗传算法,给出了该改进遗传算法编码方法、遗传算子改进方案和适应度函数的定义,该算法能有效地解决初始群体和进化过程中的无效染色体和早熟问题,并用实例验证了该算法的有效性。

【Abstract】 In military railway transportation, the pallet loading problem is described as loading a set of equipments of different sorts into pallets of some given style. The models and algorithms for pallet loading problem are presented to satisfy different demands. First Fit algorithm and conditional mutation operator are introduced into simple genetic algorithm for obtaining a better solution, and an improved genetic algorithm is proposed for solving a kind of pallet loading problem. In the improved genetic algorithm, the idea of First Fit algorithm and conditional mutation operator is used to improve the ineffective chromosome in the process of evaluation, and the improved selection operator, crossover operator and mutation operator are used to solve the problem of premature convergence of genetic algorithm. The effectiveness of the improved genetic algorithm is convinced through computational results of an example. From the viewpoint of computational results obtained, it is confirmed that the improved genetic algorithm outperforms next fit algorithm, First Fit algorithm, First Fit decreasing algorithm and simple genetic algorithm.

【基金】 总装“十五”国防科研基金资助项目
  • 【文献出处】 计算机工程 ,Computer Engineering , 编辑部邮箱 ,2006年18期
  • 【分类号】TP301.6
  • 【被引频次】9
  • 【下载频次】114
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