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Time-Sensitive User Profile for Optimizing Search Personlization

机译:时间敏感的用户配置文件,用于优化搜索个性化

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Thanks to social Web services, Web search engines have the opportunity to afford personalized search results that better fit the user's information needs and interests. To achieve this goal, many personalized search approaches explore user's social Web interactions to extract his preferences and interests, and use them to model his profile. In our approach, the user profile is implicitly represented as a vector of weighted terms which correspond to the user's interests extracted from his online social activities. As the user interests may change over time, we propose to weight profiles terms not only according to the content of these activities but also by considering the freshness. More precisely, the weights are adjusted with a temporal feature. In order to evaluate our approach, we model the user profile according to data collected from Twitter. Then, we rerank initial search results accurately to the user profile. Moreover, we proved the significance of adding a temporal feature by comparing our method with baselines models that does not consider the user profile dynamics.
机译:由于社交Web服务,网络搜索引擎有机会提供个性化的搜索结果,更好地满足用户的信息需求和兴趣。为实现这一目标,许多个性化搜索方法探索用户的社交网络交互,以提取他的偏好和兴趣,并使用它们来模拟他的个人资料。在我们的方法中,用户简档被隐式表示为加权术语的向量,其对应于从他在线社交活动中提取的用户的兴趣。随着用户兴趣可能随时间变化,我们不仅根据这些活动的内容而提出重量级别,而且还通过考虑新鲜度。更确切地说,使用时间特征调整权重。为了评估我们的方法,我们根据从Twitter收集的数据模拟用户配置文件。然后,我们将初始搜索结果重新处理到用户配置文件。此外,我们通过将我们的方法与基线模型进行比较,我们证明了添加时间特征的重要性,这些方法没有考虑用户配置文件动态的基线模型。

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