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An Efficient Approach for Ordering Outcomes and Making Social Choices with CP-Nets

机译:使用CP-Net进行订购结果和做出社会选择的有效方法

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In classical decision theory, the agents' preferences are typically modelled with utility functions that form the base for individual and multi-agent decision-making. However, utility-based preference elicitation is often complicated and sometimes not so user-friendly. In this paper, we investigate the theory of CP-nets (conditional preference networks) as a formal model for representing and reasoning with the agents' preferences. The contribution of this paper is two-fold. First, we propose a tool, called RA-Tree (Relational Assignment Tree), to generate the preference order over the outcome space for an individual agent. Moreover, when multiple agents interact, there is a need to make social choices. But given a large number of possible alternatives, it is impractical to search the collective optimal outcomes from the entire outcome space. Thus, in this paper, we provide a novel procedure to generate the optimal outcome set for multiple agents. The proposed procedure reduces the size of the search space and is computationally efficient.
机译:在经典决策理论中,通常使用效用函数对主体的偏好进行建模,这些函数构成了个人和多主体决策的基础。但是,基于实用程序的偏好激发通常很复杂,有时并不那么用户友好。在本文中,我们研究了CP-net(条件偏好网络)的理论,该理论是用代理人的偏好表示和推理的形式模型。本文的贡献是双重的。首先,我们提出一种称为RA-Tree(关系分配树)的工具,以针对单个代理在结果空间上生成偏好顺序。此外,当多个代理互动时,需要做出社会选择。但是,鉴于有大量可能的选择,从整个结果空间中搜索集体最优结果是不切实际的。因此,在本文中,我们提供了一种新颖的程序来为多个代理生成最佳结果集。所提出的过程减小了搜索空间的大小并且计算效率高。

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