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Towards Learning Travelers' Preferences in a Context-Aware Fashion

机译:以背景感知时尚学习旅行者的偏好

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Providing personalized offers, and services in general, for the users of a system requires perceiving the context in which the users' preferences are rooted. Accordingly, context modeling is becoming a relevant issue and an expanding research field. Moreover, the frequent changes of context may induce a change in the current preferences; thus, appropriate learning methods should be employed for the system to adapt automatically. In this work, we introduce a methodology based on the so-called Context Dimension Tree-a model for representing the possible contexts in the very first stages of Application Design-as well as an appropriate conceptual architecture to build a recommender system for travelers.
机译:为系统的用户提供个性化优惠和服务,需要了解用户偏好植根的上下文。 因此,上下文建模正成为相关问题和扩展研究领域。 此外,上下文的频繁变化可能会引起当前偏好的变化; 因此,应采用适当的学习方法来自动适应。 在这项工作中,我们基于所谓的上下文维度树引入一种方法 - 用于表示应用程序设计的第一阶段中可能的上下文的模型 - 以及建立旅行者推荐系统的适当概念架构。

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