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Bayesian Metanetworks for Modelling User Preferences in Mobile Environment

机译:贝叶斯的Metanetworks用于在移动环境中建模用户偏好

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The problem of profiling and filtering is important particularly for mobile information systems where wireless network traffic and mobile terminal's size are limited comparing to the Internet access from the PC. Dealing with uncertainty in this area is crucial and many researchers apply various probabilistic models. The main challenge of this paper is the multilevel probabilistic model (the Bayesian Metanetwork), which is an extension of traditional Bayesian networks. The extra level(s) in the Metanetwork is used to select the appropriate substructure from the basic network level based on contextual features from user's profile (e.g. user's location). Two models of the Metanetwork are considered: C-Metanetwork for managing conditional dependencies and R-Metanetwork for modelling feature selection. The Bayesian Metanetwork is considered as a useful tool to present the second order uncertainty and therefore to predict mobile user's preferences.
机译:分析和滤波的问题特别是对于无线网络流量和移动终端的尺寸的移动信息系统有限地比较来自PC的因特网的移动信息系统。在这一领域处理不确定性至关重要,许多研究人员适用于各种概率模型。本文的主要挑战是多级概率模型(贝叶斯Metanetwork),这是传统贝叶斯网络的延伸。 Metanetwork中的额外级别用于根据来自用户配置文件的上下文特征(例如用户位置)的上下文功能来选择来自基本网络级别的相应子结构。考虑两个模型的Metanetwork:C-Metanetwork,用于管理条件依赖关系和用于建模功能选择的R-Metanetwork。贝叶斯元乐曲被认为是呈现二阶不确定性的有用工具,从而被认为是预测移动用户的偏好。

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