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A PREDICTIVE MODEL FOR WEB PREFETCHING

机译:Web预取的预测模型

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A prefetching strategy can help individuals more effectively to reduce the perceived access delay in Web information retrieval. Some prefetching algorithms have been proposed in literatures, but previous results show the ability is limited. This paper proposes an approach on predictive prefetching, which consists of an adaptive session generation method to extract navigational behaviors from Web log and a session-tree framework to organize sessions for fast retrieval. We first present a method to segment historical information of individuals' browsing behaviors into sessions based on time gap and session similarity. Session-tree is then built from these sessions. It enables us to organize historical information easily and retrieve subsequences both by events and timestamps efficiently. On the basis of these mechanisms, we predict individuals' coming requests and prefetch some results. Further, the experimental comparison with the standard PPM algorithm is also present. Through analyzing experimental results based on a real stock data set, we conclude the performance based on the adaptive session generation and the session-tree framework can predict well.
机译:预取策略可以帮助个人更有效地减少Web信息检索中的感知访问延迟。文献中已经提出了一些预取算法,但是先前的结果表明该能力是有限的。本文提出了一种预测性预取方法,该方法包括从Web日志中提取导航行为的自适应会话生成方法和用于组织会话以进行快速检索的会话树框架。我们首先提出一种基于时间间隔和会话相似度将个人浏览行为的历史信息细分为会话的方法。然后从这些会话中构建会话树。它使我们能够轻松地组织历史信息,并有效地按事件和时间戳检索子序列。在这些机制的基础上,我们预测个人的即将到来的请求并预取一些结果。此外,还存在与标准PPM算法的实验比较。通过分析基于真实股票数据集的实验结果,我们得出基于自适应会话生成的性能,并且会话树框架可以很好地预测。

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