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Causal Analysis of User Search Query Intent

机译:用户搜索查询意图的因果分析

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We investigated the application of Causal Bayesian Networks (CBNs) to large data sets in order to predict user intent via internet search prediction. Here, sample data are taken from search engine logs (Excite, Altavista, and Alltheweb). These logs are parsed and sorted in order to create a data structure that was used to build a CBN. This network is used to predict the next term or terms that the user may be about to search (type). We looked at the application of CBNs, compared with Naive Bays and Bays Net classifiers on very large datasets. To simulate our proposed results, we took a small sample of search data logs to predict intentional query typing. Additionally, problems that arise with the use of such a data structure are addressed individually along with the solutions used and their prediction accuracy and sensitivity.
机译:我们调查了因果贝叶斯网络(CBN)在大型数据集上的应用,以便通过互联网搜索预测来预测用户的意图。在这里,样本数据来自搜索引擎日志(Excite,Altavista和Alltheweb)。对这些日志进行解析和排序,以创建用于构建CBN的数据结构。该网络用于预测下一个或多个用户可能要搜索(输入)的术语。与大型数据集上的朴素Bays和Bays Net分类器相比,我们研究了CBN的应用。为了模拟我们提出的结果,我们从一小部分搜索数据日志中预测了有意查询的类型。另外,将单独解决因使用这种数据结构而产生的问题以及所使用的解决方案及其预测准确性和敏感性。

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