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Implicit Adaptation of User Preferences in Pervasive Systems

机译:普遍系统中用户首选项的隐式适应

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User preferences have an essential role to play in decision making in pervasive systems. However, building up and maintaining a set of user preferences for an individual user is a nontrivial exercise. Relying on the user to input preferences has been found not to work and the use of different forms of machine learning are being investigated. This paper is concerned with the problem of updating a set of preferences when a new aspect of an existing preference is discovered. A basic algorithm (with variants) is given for handling this situation. This has been developed for the Daidalos and Persist pervasive systems. Some research issues are also discussed.
机译:用户偏好在普及系统的决策中起着至关重要的作用。但是,为单个用户建立和维护一组用户首选项不是一件容易的事。已经发现,依靠用户输入偏好是行不通的,并且正在研究使用不同形式的机器学习。本文涉及当发现现有偏好的新方面时更新一组偏好的问题。给出了用于处理这种情况的基本算法(带有变体)。这是为Daidalos和Persist普及系统开发的。还讨论了一些研究问题。

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