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早期背侧视觉皮层中连贯但非不连贯运动信号的解码。

Decoding of coherent but not incoherent motion signals in early dorsal visual cortex.

机构信息

UCL Institute of Cognitive Neuroscience, London, UK.

出版信息

Neuroimage. 2011 May 15;56(2):688-98. doi: 10.1016/j.neuroimage.2010.04.011. Epub 2010 Apr 10.

Abstract

When several scattered grating elements are arranged in such a way that their directions of motion are consistent with a common path, observers perceive them as belonging to a globally coherent moving object. Here we investigated how this coherence changes the representation of motion signals in human visual cortex using functional magnetic resonance imaging (fMRI) and multivariate voxel pattern decoding, which have the potential to reveal how well a stimulus is encoded in different contexts. Only during globally coherent motion was it possible to reliably distinguish fMRI signals evoked by different directions of motion in early visual cortex. This effect was specific to the retinotopic representation of the visual field quadrant in V1 traversed by the coherent element path and could not simply be attributed to a general increase in signal strength. Decoding was more reliable for cortical areas corresponding to the lower visual field. Because some previous studies observed poorer speed discrimination when motion was grouped, we also conducted behavioural experiments to investigate this with our stimuli, but did not reveal a consistent relationship between coherence and perceived speed. Taken together, these data show that neuronal populations in early visual cortex represent information that could be used for interpreting motion signals as unified objects.

摘要

当几个分散的光栅元件以其运动方向与公共路径一致的方式排列时,观察者将它们视为属于一个整体连贯运动的物体。在这里,我们使用功能磁共振成像 (fMRI) 和多元体素模式解码来研究这种连贯性如何改变人类视觉皮层中运动信号的表示,这种方法有可能揭示刺激在不同背景下的编码程度。只有在整体连贯运动时,才有可能可靠地区分早期视觉皮层中由不同运动方向引起的 fMRI 信号。这种效应特定于 V1 中沿相干元件路径穿过的视觉场象限的视网膜代表区,不能简单地归因于信号强度的普遍增加。对于对应于较低视觉场的皮质区域,解码更可靠。因为一些先前的研究观察到当运动被分组时,速度辨别能力较差,所以我们还使用我们的刺激进行了行为实验来研究这一点,但没有发现连贯性和感知速度之间的一致关系。总的来说,这些数据表明,早期视觉皮层中的神经元群体代表了可以用于将运动信号解释为统一物体的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e41/3084455/570f9e146bb5/gr6.jpg

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