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Modeling Decision-Maker Preferences through Utility Function Level Sets

机译:通过效用功能级别集对决策者偏好进行建模

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In this paper, we present a method based on the multiat-tribute utility theory to approximate the decision-maker preference function. A feature of the proposed methodology is its ability to represent arbitrary preference functions, including functions in which there are non-linear dependencies among different decision criteria. The preference information extracted from the decision-maker involves ordinal description only, and is structured using a partial ranking procedure. An artificial neural network is constructed to approximate the decision-maker preferences, reproducing the level sets of the underlying utility function. The proposed procedure can be useful when recurrent decisions are to be performed, with the same decision-maker over different sets of alternatives. It is shown here that the inclusion/exclusion of information causes only local rank reversals instead of large scale ones that may occur in several existing methodologies. The proposed method is also robust to relatively large levels of wrong answers of the decision maker.
机译:在本文中,我们提出了一种基于多属性效用理论的近似决策者偏好函数的方法。所提出的方法的一个特征是其能够表示任意偏好函数的能力,包括在不同决策标准之间存在非线性依赖性的函数。从决策者中提取的偏好信息仅涉及顺序描述,并使用部分排序过程进行构造。构建了一个人工神经网络,以近似决策者的偏好,从而再现底层效用函数的水平集。当将由同一决策者执行不同选择集时,要执行循环决策时,建议的过程可能会很有用。此处显示,信息的包含/排除仅导致局部等级反转,而不是在几种现有方法中可能发生的大规模反转。所提出的方法对于较大水平的决策者的错误回答也是鲁棒的。

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