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首页> 外文期刊>Journal of Cognitive Neuroscience >Attentional Fluctuations Influence the Neural Fidelity and Connectivity of Stimulus Representations
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Attentional Fluctuations Influence the Neural Fidelity and Connectivity of Stimulus Representations

机译:注意波动影响刺激表示的神经保真度和连接性。

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Attention is thought to facilitate both the representation of task-relevant features and the communication of these representations across large-scale brain networks. However, attention is not all or none, but rather it fluctuates between stable/accurate (in-the-zone) and variable/error-prone (out-of-the-zone) states. Here we ask how different attentional states relate to the neural processing and transmission of task-relevant information. Specifically, during in-the-zone periods: (1) Do neural representations of task stimuli have greater fidelity? (2) Is there increased communication of this stimulus information across large-scale brain networks? Finally, (3) can the influence of performance-contingent reward be differentiated from zone-based fluctuations? To address these questions, we used fMRI and representational similarity analysis during a visual sustained attention task (the gradCPT). Participants (n = 16) viewed a series of city or mountain scenes, responding to cities (90% of trials) and withholding to mountains (10%). Representational similarity matrices, reflecting the similarity structure of the city exemplars (n = 10), were computed from visual, attentional, and default mode networks. Representational fidelity (RF) and representational connectivity (RC) were quantified as the interparticipant reliability of representational similarity matrices within (RF) and across (RC) brain networks. We found that being in the zone was characterized by increased RF in visual networks and increasing RC between visual and attentional networks. Conversely, reward only increased the RC between the attentional and default mode networks. These results diverge with analogous analyses using functional connectivity, suggesting that RC and functional connectivity in tandem better characterize how different mental states modulate the flow of information throughout the brain.
机译:人们认为注意力既可以促进与任务相关的特征的表示,又可以促进这些表示在大型脑网络之间的交流。但是,注意力不是全部或全部,而是在稳定/准确(区域内)和易变/容易出错(区域外)状态之间波动。在这里,我们问不同的注意力状态如何与任务相关信息的神经处理和传输相关。具体而言,在区域内期间:(1)任务刺激的神经表示是否具有更高的保真度? (2)这种刺激信息在大型大脑网络之间的交流是否增加了?最后,(3)能否将基于绩效的奖励的影响与基于区域的波动区分开?为了解决这些问题,我们在视觉持续关注任务(gradCPT)期间使用了功能磁共振成像和表征相似性分析。参与者(n = 16)观看了一系列城市或山脉的场景,对城市做出了回应(占试验的90%),对山脉没有做出回应(占10%)。从视觉,注意和默认模式网络计算出反映城市样本(n = 10)相似结构的代表性相似矩阵。代表性保真度(RF)和代表性连通性(RC)被量化为(RF)和跨(RC)脑网络内代表性相似性矩阵的参与者间可靠性。我们发现,处于该区域的特征是视觉网络中的RF增加以及视觉网络和注意力网络之间的RC增加。相反,奖励只会增加注意力和默认模式网络之间的RC。这些结果与使用功能连接性的类似分析有所不同,表明RC和功能连接性更好地表征了不同的心理状态如何调节整个大脑的信息流。

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  • 来源
    《Journal of Cognitive Neuroscience 》 |2018年第9期| 1209-1228| 共20页
  • 作者单位

    VA Boston Healthcare Syst, Jamaica Plain Campus,150 S Huntington Ave, Boston, MA 02130 USA;

    VA Boston Healthcare Syst, Jamaica Plain Campus,150 S Huntington Ave, Boston, MA 02130 USA;

    VA Boston Healthcare Syst, Jamaica Plain Campus,150 S Huntington Ave, Boston, MA 02130 USA;

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