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Context Sensitivity of EEG-Based Workload Classification Under Different Affective Valence

机译:基于EEG的工作量分类在不同情感效果下的背景敏感性

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State of the art brain-computer interfaces (BCIs) largely focus on detecting single, specific, often experimentally induced or manipulated aspects of the user state. In a less controlled, more naturalistic environment, a larger variety of mental processes may be active and possibly interacting. When moving BCI applications from the lab to real-life applications, these additional unaccounted mental processes could interfere with user state decoding, thus decreasing system efficacy and decreasing real-world applicability. Here, we assess the impact of affective valence on classification of working memory load, by re-analyzing a dataset that used an affective N-back task with picture stimuli. Our analyses showed that classification of working memory load under affective valence can lead to good classification accuracies (> 70 percent), which can be further improved via data integration over time. However, positive as well as negative affective valence resulted in decreased classification accuracies, when compared to the neutral affective context. Furthermore, classifiers failed to generalize across affective contexts, highlighting the need for user state models that can account for different contexts or new, context-independent, EEG features.
机译:最先进的脑电脑接口(BCIS)在很大程度上专注于检测用户状态的单一特定,经常经过实验诱导或操纵的方面。在不太受控的,更自然的环境中,较大种类的精神过程可能是活跃的并且可能是相互作用的。当从实验室移动到现实生活中的BCI应用程序时,这些额外的未计算的心理过程可能会干扰用户状态解码,从而降低系统功效并降低现实世界的适用性。在这里,我们通过重新分析使用具有图片刺激的DataSet来评估情感价值对工作内存负荷分类的影响。我们的分析表明,在情感化合价下的工作内存负荷分类可能导致良好的分类准确性(> 70%),可以通过数据集成进一步改善。然而,与中性情感上下文相比,阳性和负面情感效果导致分类准确性降低。此外,分类器未能概遍跨情感上下文,突出显示可以考虑不同上下文或新的上下文,独立的EEG功能的用户状态模型的需求。

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