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An efficient recommendation method based on server Web-logs

机译:一种基于服务器Web日志的高效推荐方法

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In this paper, we propose a predictive framework based on server Web log. We use profile to discover the community's interest and an effective index structure named session-tree to perform recommendation. We convert server log into a tree structure. After labeling and linking nodes in the session-tree, we can do sequential matching and recommendation. We present an award function in each session based on evolutionary strategy to train the recommendation process and then analyze the common interest within the community. The session-tree structure enables us to retrieve all subsequences both by events and timestamps efficiently. Based on those mechanisms, we predict individuals' coming request and recommend Web pages in server site both on individual and common interest. Through analyzing experimental results, we conclude this method based on adaptive session generation, sequence matching, index structure, evolutionary strategy and common interest profile can recommend well.
机译:在本文中,我们提出了一个基于服务器Web日志的预测框架。我们使用概要文件来发现社区的兴趣,并使用名为session-tree的有效索引结构来执行推荐。我们将服务器日志转换为树形结构。在会话树中标记并链接节点后,我们可以进行顺序匹配和推荐。我们会在每届会议上根据进化策略介绍奖励功能,以培训推荐过程,然后分析社区内的共同兴趣。会话树结构使我们能够按事件和时间戳有效地检索所有子序列。基于这些机制,我们可以预测个人的请求,并根据个人和共同利益推荐服务器站点中的网页。通过对实验结果的分析,我们得出基于自适应会话生成,序列匹配,索引结构,进化策略和共同兴趣特征的这种方法可以很好地推荐。

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