预测下一个搜索操作与搜索引擎查询日志

K. Lin, Chieh-Jen Wang, Hsin-Hsi Chen
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引用次数: 10

摘要

捕获用户未来的搜索行为有许多潜在的应用,如查询推荐、网页重新排序、广告安排等。本文根据用户当前的访问行为和全局用户的查询日志,预测用户未来的查询和URL点击。我们从用户当前搜索会话中的查询和点击url中探索各种特性,从查询日志中选择相似的意图,并使用它们进行预测。针对搜索会话中的意图转移问题,本文讨论了哪些行为对预测的影响更大,哪些表示更适合表示用户的意图,如何测量意图相似度,以及检索到的相似意图如何影响预测。以MSN搜索查询日志摘录(RFP 2006数据集)作为实验语料库。提出了三种方法和退退模型。
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Predicting Next Search Actions with Search Engine Query Logs
Capturing users' future search actions has many potential applications such as query recommendation, web page re-ranking, advertisement arrangement, and so on. This paper predicts users' future queries and URL clicks based on their current access behaviors and global users' query logs. We explore various features from queries and clicked URLs in the users' current search sessions, select similar intents from query logs, and use them for prediction. Because of an intent shift problem in search sessions, this paper discusses which actions have more effects on the prediction, what representations are more suitable to represent users' intents, how the intent similarity is measured, and how the retrieved similar intents affect the prediction. MSN Search Query Log excerpt (RFP 2006 dataset) is taken as an experimental corpus. Three methods and the back-off models are presented.
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