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Toward Case-Based Preference Elicitation: Similarity Measures on Preference Structures

机译:迈向基于案例的偏好启发:偏好结构的相似性度量

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While decision theory provides an appealing normative framework for representing rich preference structures, eliciting utility or value functions typically incurs a large cost. For many applications involving interactive systems this overhead precludes the use of formal decision-theoretic models of preference. Instead of performing elicitation in a vacuum, it would be useful if we could augment directly elicited preferences with some appropriate default information. In this paper we propose a case-based approach to alleviating the preference elicitation bottleneck. Assuming the existence of a population of users from whom we have elicited complete or incomplete preference structures, we propose eliciting the preferences of a new user interactively and incrementally, using the closest existing preference structures as potential defaults. Since a notion of closeness demands a measure of distance among preference structures, this paper takes the first step of studying various distance measures over fully and partially specified preference structures. We explore the use of Euclidean distance, Spearman's footrule, and define a new measure, the probabilistic distance. We provide computational techniques for all three measures.
机译:尽管决策理论为表示丰富的偏好结构提供了一个吸引人的规范框架,但引出效用或价值函数通常会产生巨大的成本。对于涉及交互式系统的许多应用程序,此开销会阻止使用偏好的形式决策理论模型。代替在真空中进行启发,如果我们可以使用一些适当的默认信息来增加直接引起的偏好,那将很有用。在本文中,我们提出了一种基于案例的方法来缓解偏好诱发瓶颈。假设我们已经从中得出完整或不完整的偏好结构的用户群体的存在,我们建议使用最接近的现有偏好结构作为潜在默认值,以交互方式和增量方式来激发新用户的偏好。由于亲密性的概念要求对偏好结构之间的距离进行度量,因此本文采取了第一步,即研究部分或全部指定偏好结构上的各种距离度量。我们探索了欧几里得距离(斯皮尔曼法则)的用法,并定义了一个新的度量,即概率距离。我们为所有这三个量度提供了计算技术。

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