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Exploiting User Interests to Characterize Navigational Patterns in Web Browsing Assistance

机译:利用用户兴趣来表征Web浏览协助中的导航模式

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In order to be capable of exploiting context for pro-active in- formation recommendation, agents need to extract and understand user activities based on their knowledge of the user interests. In this paper, we propose a novel approach for context-aware recommendation in browsing assistants based on the integration of user profiles, navigational patterns and contextual elements. In this approach, user profiles built using an unsupervised Web page clustering algorithm are used to characterize user ongoing activities and behavior patterns. Experimental evidence show that using longer-term interests to explain active browsing goals user assistance is effectively enhanced.
机译:为了能够利用上下文进行主动信息推荐,代理需要基于他们对用户兴趣的了解来提取和理解用户活动。在本文中,我们基于用户配置文件,导航模式和上下文元素的集成,提出了一种新的浏览助手上下文感知推荐方法。在这种方法中,使用无监督网页聚类算法构建的用户配置文件可用于表征用户正在进行的活动和行为模式。实验证据表明,使用长期兴趣来解释主动浏览目标可以有效地增强用户帮助。

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