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Regularized estimation for preference disaggregation in multiple criteria decision making

机译:多准则决策中偏好分解的正则估计

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摘要

Disaggregation methods have been extensively used in multiple criteria decision making to infer preferential information from reference examples, using linear programming techniques. This paper proposes simple extensions of existing formulations, based on the concept of regularization which has been introduced within the context of the statistical learning theory. The properties of the resulting new formulations are analyzed for both ranking and classification problems and experimental results are presented demonstrating the improved performance of the proposed formulations over the ones traditionally used in preference disaggregation analysis.
机译:分解方法已广泛用于多准则决策中,以使用线性编程技术从参考示例中推断优先信息。本文基于在统计学习理论的背景下引入的正则化概念,提出了现有公式的简单扩展。分析了所得新配方的特性,以解决排名和分类问题,并提供了实验结果,证明了所提出配方的性能优于传统的偏好分类分析方法。

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