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Toward Fully Automated Person-Independent Detection of Mind Wandering

机译:朝着完全自动的人无关的心灵徘徊

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Mind wandering is a ubiquitous phenomenon where attention involuntary shifts from task-related processing to task-unrelated thoughts. Mind wandering has negative effects on performance, hence, intelligent interfaces that detect mind wandering can intervene to restore attention to the current task. We investigated the use of eye gaze and contextual cues to automatically detect mind wandering during reading with a computer interface. Participants were pseudo-randomly probed to report mind wandering instances while an eye tracker recorded their gaze during a computerized reading task. Supervised machine learning techniques detected positive responses to mind wandering probes from gaze and context features in a user-independent fashion. Mind wandering was predicted with an accuracy of 72% (expected accuracy by chance was 62%) when probed at the end of a page and an accuracy of 59% (chance was 50%) when probed in the midst of reading a page. Possible improvements to the detectors and applications are discussed.
机译:介意徘徊是一种无处不在的现象,其中注意非自愿从与任务相关的处理转变为任务无关的想法。介意徘徊对性能产生负面影响,因此,检测心灵徘徊的智能界面可以干预,以恢复对当前任务的关注。我们调查了眼睛凝视和语境提示在阅读时使用计算机界面读取时自动检测心灵徘徊。参与者被伪随机探究报告介意徘徊的情况,而眼追踪器在计算机化的阅读任务期间记录了他们的凝视。监督机器学习技术检测到以用户独立的方式从凝视和上下文特征中介绍探测的正响应。在页面末尾探测时,预测精度为72%(偶然的预期精度为62%)预测,精度为72%(预期的精度为62%),准确性在阅读页面中探测时59%(机会为50%)。讨论了对探测器和应用的可能改进。

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