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Constructive Preference Elicitation for Multiple Users with Setwise Max-margin

机译:具有SETWISE MAX-ramgin的多个用户的建设性偏好诱导

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In this paper we consider the problem of simultaneously eliciting the preferences of a group of users in an interactive way. We focus on constructive recommendation tasks, where the instance to be recommended should be synthesized by searching in a constrained configuration space rather than choosing among a set of pre-determined options. We adopt a setwise max-margin optimization method, that can be viewed as a generalization of max-margin learning to sets, supporting the identification of informative questions and encouraging sparsity in the parameter space. We extend setwise max-margin to multiple users and we provide strategies for choosing the user to be queried next and identifying an informative query to ask. At each stage of the interaction, each user is associated with a set of parameter weights (a sort of alternative options for the unknown user utility) that can be used to identify "similar" users and to propagate preference information between them. We present simulation results evaluating the effectiveness of our procedure, showing that our approach compares favorably with respect to straightforward adaptations in a multi-user setting of elicitation methods conceived for single users.
机译:在本文中,我们认为以互动方式同时引出一组用户的偏好问题。我们专注于建议性的推荐任务,其中应该通过在约束的配置空间中搜索来合成要推荐的实例,而不是在一组预定选项中选择。我们采用了一套套盘幅度优化方法,可以被视为Max-Ramin学习的概括,用于设置信息,并识别参数空间中的稀疏性。我们向多个用户扩展了SetWise Max-余量,我们提供了选择要查询的策略,并识别要询问的信息性查询。在交互的每个阶段,每个用户都与一组参数权重(一种用于未知用户实用程序的类型选项)相关联,该参数权重(用于未知用户实用程序的替代选项)可以用于识别“类似”用户并在它们之间传播偏好信息。我们提出了仿真结果评估了我们的程序的有效性,表明我们的方法在为单个用户构思的诱导方法的多用户设置中有利地比较。

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