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基于决策者偏好投影寻踪模型的多属性决策法

Multiple Attribute Decision-making Method Based on Preference Information and Projecting Pursuit Classification Model

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【作者】 高立群; 李丹; 王珂;

【Author】 GAO Li-qun,LI Dan,WANG Ke (School of Information Science and Engineering,Northeastern University,Shenyang 110004,China)

【机构】 东北大学信息科学与工程学院; 东北大学信息科学与工程学院 沈阳110004; 沈阳110004;

【摘要】 针对现有主观赋权法和客观赋权法的不足,提出了一种新的综合赋权方法——基于决策者偏好及投影寻踪聚类模型的综合赋权法。该方法运用投影寻踪聚类模型,把多属性决策问题中的高维数据转化到低维子空间,同时用自适应粒子群优化算法来优化投影指标函数和模型参数,获得了决策属性体系最佳投影方向和投影值,揭示了高维数据的结构特征。同时,也考虑了决策者对不同属性的偏好,使对属性的赋权达到主观与客观的统一。最后通过一个仿真实例说明了该方法的可行性与有效性。

【Abstract】 In view of the shortage of the present subjective and objective assigning weight methods,a new combination assigning weight approach based on the decision-maker’s preference and projecting pursuit classification model was proposed. Through applying projecting pursuit classification model based on adaptive particle swarm optimization algorithm in multiple attribute decision-making problems,the multi-dimension data of decision-making problem were easily changed into low dimension space and the multi-dimension data’s structure feature could be discovered. Accordingly the optimum projection direction and the value of project function could be obtained. At the same time,this approach considered the decision-maker’s preference information,too. The simulation results show that the proposed approach is effective and feasible.

【基金】 国家自然科学基金(60274009)
  • 【文献出处】 系统仿真学报 ,Journal of System Simulation , 编辑部邮箱 ,2007年24期
  • 【分类号】C934
  • 【被引频次】24
  • 【下载频次】408
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