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Effects of Task Performance and Task Complexity on the Validity of Computational Models of Attention

机译:任务绩效和任务复杂度对注意力计算模型有效性的影响

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Computational models of attention can be used as a component of decision support systems. For accurate support, a computational model of attention has to be valid and robust. The effects of task performance and task complexity on the validity of three different computational models of attention were investigated in an experiment. The gaze-based model uses gaze behavior to determine where the subject's attention is, the task-based model uses information about the task and the combined model uses both gaze behavior and task information. While performing a tactical compilation task, participants had to indicate to what set of objects their attention was allocated. The indications of the participants were compared with the estimations of the three models. The results show that overall, the estimation of the combined model was better than that of the other two models. Contrary to what was expected, the performance of the models was not different for good and bad performers and was not different for a simple and complex scenario. The difference in complexity and performance might not have been strong enough. Further research is needed to determine if improvement of the combined model is possible with additional features and if computational models of attention can effectively be used in decision support systems. This can be done using a similar validation methodology as presented in this paper.
机译:注意的计算模型可以用作决策支持系统的组成部分。为了获得准确的支持,注意力的计算模型必须有效且健壮。通过实验研究了任务性能和任务复杂性对三种不同注意力计算模型有效性的影响。基于凝视的模型使用凝视行为来确定对象的注意力在哪里,基于任务的模型使用有关任务的信息,而组合模型同时使用凝视行为和任务信息。在执行战术编制任务时,参与者必须指出他们的注意力分配给了哪些对象。将参与者的适应症与三个模型的估计值进行比较。结果表明,总的来说,组合模型的估计要好于其他两个模型。与预期相反,模型的性能对于表现良好的公司和对绩效不好的公司都没有什么不同,对于简单和复杂的情况也没有什么不同。复杂性和性能上的差异可能不够强烈。需要进行进一步的研究,以确定是否可以通过附加功能来改进组合模型,以及注意力的计算模型是否可以有效地用于决策支持系统中。可以使用本文介绍的类似验证方法来完成。

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