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Toward Adaptive Training Based on Bio-behavioral Monitoring

机译:基于生物行为监测的适应性训练

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The present work investigates a cumulative part-task training method that builds up task complexity adaptively based on individual learner states. A research-oriented game entitled "Space Fortress" was used to evaluate two training conditions in a between-group design prior to a third condition involving an adaptive cumulative part task training method. The latter detects when the learner is ready to progress and dynamically adjusts training progression. Here we report the results of the first two conditions. First was the full task condition, where the learner was exposed to the entire task throughout the training session. The second condition followed a cumulative part-task training approach, where sub-tasks were added at fixed progression points. Results showed no statistically significant gain nor loss in terms of learning outcomes between the full task and the non-adaptive cumulative part task condition, adding evidence to previous mixed findings. A trigger rule needed for the adaptive cumulative part task training condition was developed based on short-term patterns of change in performance and mental workload to be used as a dynamic criterion for adaptation. Furthermore, bio-behavioral measures were evaluated as potential proxies for performance and workload with the aim of applying this adaptive method in contexts where performance and workload cannot be directly measured at regular intervals.
机译:本工作研究了一种累积的部分任务训练方法,该方法根据个体学习者的状态自适应地建立任务的复杂性。一个名为“太空堡垒”的面向研究的游戏被用来评估组间设计中的两个训练条件,然后才是涉及自适应累积零件任务训练方法的第三个条件。后者检测学习者何时准备好进步,并动态调整训练进度。在这里,我们报告前两个条件的结果。首先是完整的任务条件,在整个培训课程中,学习者将学习整个任务。第二种条件是遵循累积的部分任务训练方法,其中在固定的进度点添加了子任务。结果表明,在完整任务与非自适应累积部分任务条件之间的学习结果方面,没有统计学上的显着得失,也为先前的混合发现增加了证据。基于性能和精神工作量变化的短期模式,开发了适应性累积零件任务训练条件所需的触发规则,以用作适应的动态标准。此外,生物行为措施被评估为性能和工作量的潜在代理,目的是在无法定期定期测量性能和工作量的情况下应用这种自适应方法。

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