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Research on User Profiling Technology for Personalized Demands

机译:个性化需求的用户分析技术研究

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User profiling technology is discussed based on the diversity and randomness of user demands. The key technologies, which include profile initialization and updating, are researched. The user profle is expressed in form of vector space model. It's built using centroid-based classification method. User's browsing behaviors are analyzed to get feedback implicitly, calculating the documents degrees. A periodic adaptive learning mechanism based on Rocchio algorithm is put forward. The profile's capability to dynamic track user needs is verified using satisfaction as evaluation indicator in experiments.
机译:基于用户需求的多样性和随机性,讨论了用户配置文件技术。研究了包括配置文件初始化和更新在内的关键技术。用户特征以向量空间模型的形式表示。它是使用基于质心的分类方法构建的。分析用户的浏览行为以隐式获得反馈,从而计算文档度。提出了一种基于Rocchio算法的周期性自适应学习机制。使用满意度作为实验中的评估指标,可以验证配置文件动态跟踪用户需求的能力。

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