个性化悖论:任务预测需要个性化模型吗?

M. Mitsui, Jiqun Liu, C. Shah
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引用次数: 10

摘要

我们探索1)任务和浏览行为之间的统计显著关系和2)从这些行为预测任务类型之间的差距。先前的文献已经表明了网络浏览行为与人相应的搜索任务之间的关系。我们发现了具有统计意义的用于检测任务的浏览器特性——将这些特性与以前的文献进行比较——并将这些知识应用于搜索会话的任务分类。尽管显著的特征改善了基线上的预测,但并没有提高多少。我们建议对这些特征进行更细致的处理,而不仅仅是统计显著性。在某些情况下,考虑个人模式可能需要有效的预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Paradox of Personalization: Does Task Prediction Require Individualized Models?
We explore the gap between 1) statistically significant relationships between task and browsing behavior and 2) predicting task type from such behaviors. Previous literature has shown relationships between Web browsing behavior and person»s corresponding search task. We find statistically significant browser features for detecting task - comparing the features to previous literature - and apply this knowledge to task classification of search sessions. Even though significant features improve prediction over baselines, it is not by much. We suggest that a more subtle treatment of such features should go beyond statistical significance. In some cases, considering personal patterns may be required for effective prediction.
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