Haverford College, Haverford, PA, USA.
Eur J Neurosci. 2021 Jan;53(2):543-555. doi: 10.1111/ejn.14947. Epub 2020 Sep 14.
Arousal evoked by detecting a performance error may provide a mechanism by which error detection leads to either adaptive or maladaptive changes in attention and performance. By pairing EEG data acquisition with simultaneous measurements of pupil diameter, which is thought to reflect norepinephrinergic arousal, this study tested whether transient changes in EEG oscillations in the alpha frequency range (8-12 Hz) following performance mistakes may reflect error-evoked arousal. In the inter-trial interval following performance mistakes (approximately 8% of trials), pupil diameter increased and EEG alpha power decreased, compared to the inter-trial interval following correct responses. Moreover when trials were binned based on pupil diameter on a within-subjects basis, trials with greater pupil diameter were associated with lower EEG alpha power during the inter-trial interval. This pattern of association suggests that error-related alpha suppression, like pupil dilation, reflects arousal in response to error commission. Errors were also followed by worse next-trial performance, implying that error-evoked arousal may not always be beneficial for adaptive control.
检测到性能错误所引起的兴奋可能为错误检测导致注意力和性能产生适应性或不适应性变化提供了一种机制。本研究通过将 EEG 数据采集与瞳孔直径的同步测量(被认为反映去甲肾上腺素能兴奋)相结合,测试了在执行错误后,EEG 中 alpha 频带(8-12 Hz)的振荡是否会发生短暂变化,从而反映错误引起的兴奋。与正确反应后的试验间隔相比,在执行错误后的试验间隔内(约占试验的 8%),瞳孔直径增加,EEG alpha 功率降低。此外,当根据被试的瞳孔直径在试验内对试验进行分组时,瞳孔直径较大的试验与试验间隔内较低的 EEG alpha 功率相关。这种关联模式表明,与错误相关的 alpha 抑制(如瞳孔扩张)反映了对错误发生的兴奋。错误之后的下一次试验表现也更差,这意味着错误引起的兴奋并不总是对适应性控制有益。