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Besting the Quiz Master: Crowdsourcing Incremental Classification Games

机译:最好的测验硕士:众群增量分类游戏

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Cost-sensitive classification, where the features used in machine learning tasks have a cost, has been explored as a means of balancing knowledge against the expense of incrementally obtaining new features. We introduce a setting where humans engage in classification with incrementally revealed features: the collegiate trivia circuit. By providing the community with a web-based system to practice, we collected tens of thousands of implicit word-by-word ratings of how useful features are for eliciting correct answers. Observing humans' classification process, we improve the performance of a state-of-the art classifier. We also use the dataset to evaluate a system to compete in the incremental classification task through a reduction of reinforcement learning to classification. Our system learns when to answer a question, performing better than baselines and most human players.
机译:机器学习任务中使用的功能具有成本的成本敏感分类,已被探索为平衡知识的手段,以防止逐步获得新功能的费用。我们介绍一个人类与逐步揭示的特征进行分类的环境:大学琐事电路。通过向社区提供基于Web的系统来练习,我们收集了数万种隐含的单词额定词,了解有用的功能如何用于引发正确答案。观察人类的分类过程,我们提高了最先进的分类器的性能。我们还使用DataSet通过减少加强学习来评估一个系统来竞争增量分类任务。我们的系统学习何时回答一个问题,表现优于基线和大多数人类参与者。

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