探索单次迭代澄清对话框的局限性

Jimmy J. Lin, Philip Wu, Dina Demner-Fushman, E. Abels
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引用次数: 6

摘要

在TREC HARD轨道中实现的单迭代澄清对话代表了将交互引入特别检索的尝试,同时保留了大规模评估的许多好处。虽然以前的实验并没有最终证明这种相互作用带来的性能提升,但尚不清楚这些发现是否说明了澄清对话的本质,还是仅仅说明了当前系统的局限性。为了探索这种互动的局限性,我们雇佣了一个人类中介来制定澄清问题并利用用户的反应。除了建立一个貌似合理的性能上限之外,我们还能够诱导一个“澄清本体”来表征人类行为。反过来,这个本体充当回归模型的输入,该模型试图确定哪种类型的澄清问题最有帮助。我们的工作可以为启动用户对话的交互系统的设计提供信息。
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Exploring the limits of single-iteration clarification dialogs
Single-iteration clarification dialogs, as implemented in the TREC HARD track, represent an attempt to introduce interaction into ad hoc retrieval, while preserving the many benefits of large-scale evaluations. Although previous experiments have not conclusively demonstrated performance gains resulting from such interactions, it is unclear whether these findings speak to the nature of clarification dialogs, or simply the limitations of current systems. To probe the limits of such interactions, we employed a human intermediary to formulate clarification questions and exploit user responses. In addition to establishing a plausible upper bound on performance, we were also able to induce an "ontology of clarifications" to characterize human behavior. This ontology, in turn, serves as the input to a regression model that attempts to determine which types of clarification questions are most helpful. Our work can serve to inform the design of interactive systems that initiate user dialogs.
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