首页> 外文会议>International Conference on User Modeling(UM 2005); 20050724-29; Edinburgh(GB) >Exploiting Probabilistic Latent Information for the Construction of Community Web Directories
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Exploiting Probabilistic Latent Information for the Construction of Community Web Directories

机译:利用概率潜在信息构建社区Web目录

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摘要

This paper improves a recently-presented approach to Web Personalization, named Community Web Directories, which applies personalization techniques to Web Directories. The Web directory is viewed as a concept hierarchy and personalization is realized by constructing user community models on the basis of usage data collected by the proxy servers of an Internet Service Provider. The user communities are modeled using Probabilistic Latent Semantic Analysis (PLSA), which provides a number of advantages such as overlapping communities, as well as a good rationale for the associations that exist in the data. The data that are analyzed present challenging peculiarities such as their large volume and semantic diversity. Initial results presented in this paper illustrate the effectiveness of the new method.
机译:本文改进了最近提出的Web个性化方法,即社区Web目录,该方法将个性化技术应用于Web目录。 Web目录被视为概念层次结构,并通过基于Internet服务提供商的代理服务器收集的使用数据构建用户社区模型来实现个性化。用户社区是使用概率潜在语义分析(PLSA)建模的,它提供了许多优势,例如社区重叠,并为数据中存在的关联提供了良好的基础。所分析的数据具有挑战性,例如其庞大的数量和语义多样性。本文介绍的初步结果说明了该新方法的有效性。

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