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Exploring Searcher Interactions for Distinguishing Types of Commercial Intent

机译:探索搜索者交互,以区分商业意图类型

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An improved understanding of the relationship between search intent, result quality, and searcher behavior is crucial for improving the effectiveness of web search. While recent progress in user behavior mining has been largely focused on aggregate server-side click logs, we present a new search behavior model that incorporates finegrained user interactions with the search results. We show that mining these interactions, such as mouse movements and scrolling, can enable more effective detection of the user's search intent. Potential applications include automatic search evaluation, improving search ranking, result presentation, and search advertising. As a case study, we report results on distinguishing between "research" and "purchase" variants of commercial intent, that show our method to be more effective than the current state-of-the-art.
机译:改进了对搜索意图,结果质量和搜索者行为之间关系的理解对于提高网络搜索的有效性至关重要。虽然最近的用户行为挖掘的进展已经很大程度上聚焦在聚合服务器端单击日志上,但是我们介绍了一个新的搜索行为模型,其中包含了与搜索结果的FineCregRate的用户交互。我们显示挖掘这些交互,例如鼠标移动和滚动,可以更有效地检测用户的搜索意图。潜在的应用包括自动搜索评估,改进搜索排名,结果演示和搜索广告。作为一个案例研究,我们报告了分别区分“研究”和“购买”的商业意图变种,表明我们的方法比目前最先进的方法更有效。

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