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网络动力学在响应错误时的速度-准确性权衡中的作用。

Network dynamics underlying speed-accuracy trade-offs in response to errors.

机构信息

Department of Psychiatry, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts, United States of America ; Athinoula A. Martinos Center for Biomedical Imaging, Charlestown, Massachusetts, United States of America.

出版信息

PLoS One. 2013 Sep 12;8(9):e73692. doi: 10.1371/journal.pone.0073692. eCollection 2013.

Abstract

The ability to dynamically and rapidly adjust task performance based on its outcome is fundamental to adaptive, flexible behavior. Over trials of a task, responses speed up until an error is committed and after the error responses slow down. These dynamic adjustments serve to optimize performance and are well-described by the speed-accuracy trade-off (SATO) function. We hypothesized that SATOs based on outcomes reflect reciprocal changes in the allocation of attention between the internal milieu and the task-at-hand, as indexed by reciprocal changes in activity between the default and dorsal attention brain networks. We tested this hypothesis using functional MRI to examine the pattern of network activation over a series of trials surrounding and including an error. We further hypothesized that these reciprocal changes in network activity are coordinated by the posterior cingulate cortex (PCC) and would rely on the structural integrity of its white matter connections. Using diffusion tensor imaging, we examined whether fractional anisotropy of the posterior cingulum bundle correlated with the magnitude of reciprocal changes in network activation around errors. As expected, reaction time (RT) in trials surrounding errors was consistent with predictions from the SATO function. Activation in the default network was: (i) inversely correlated with RT, (ii) greater on trials before than after an error and (iii) maximal at the error. In contrast, activation in the right intraparietal sulcus of the dorsal attention network was (i) positively correlated with RT and showed the opposite pattern: (ii) less activation before than after an error and (iii) the least activation on the error. Greater integrity of the posterior cingulum bundle was associated with greater reciprocity in network activation around errors. These findings suggest that dynamic changes in attention to the internal versus external milieu in response to errors underlie SATOs in RT and are mediated by the PCC.

摘要

基于结果动态快速调整任务表现的能力是自适应、灵活行为的基础。在一项任务的多次试验中,反应速度会加快,直到犯错误,然后在错误后反应速度会减慢。这些动态调整有助于优化性能,并且很好地由速度准确性权衡(SATO)函数描述。我们假设基于结果的 SATOs 反映了注意力在内部环境和手头任务之间的分配的相互变化,这由默认和背侧注意脑网络之间的活动的相互变化来表示。我们使用功能磁共振成像来检验这个假设,以检查在一系列包括和不包括错误的试验中网络激活的模式。我们进一步假设,这些网络活动的相互变化是由后扣带回皮层(PCC)协调的,并且依赖于其白质连接的结构完整性。我们使用弥散张量成像检查后扣带束的分数各向异性是否与错误周围网络激活的相互变化幅度相关。正如预期的那样,错误周围试验的反应时间(RT)与 SATO 函数的预测一致。默认网络的激活:(i)与 RT 呈负相关,(ii)在错误之前的试验中大于错误之后的试验,(iii)在错误时最大。相比之下,背侧注意网络的右侧顶内沟的激活:(i)与 RT 呈正相关,表现出相反的模式:(ii)在错误之前的试验中激活较少,(iii)在错误时激活最少。后扣带束的完整性越高,与错误周围网络激活的相互变化就越大。这些发现表明,对内部与外部环境的注意力的动态变化是响应错误的 SATOs 在 RT 中的基础,并且由 PCC 介导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/042c/3772006/58f4fdda930e/pone.0073692.g001.jpg

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