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Visual motion transforms visual space representations similarly throughout the human visual hierarchy

机译:视觉运动在整个人类视觉层次中以相似的方式转换视觉空间表示

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Several studies demonstrate that visual stimulusmotion affects neural receptive fields and fMRI response amplitudes. Here we unite results of these two approaches and extend them by examining the effects of visual motion on neural position preferences throughout the hierarchy of human visual field maps. We measured population receptive field (pRF) properties using high-field fMRI (7 T), characterizing position preferences simultaneously over large regions of the visual cortex. We measured pRFs properties using sine wave gratings in stationary apertures, moving at various speeds in either the direction of pRF measurement or the orthogonal direction. Wefind direction- and speed-dependent changes in pRF preferred position and size in all visual field maps examined, including V1, V3A, and the MT + map TO1. These effects on pRF properties increase up the hierarchy of visual field maps. However, both within and between visual field maps the extent of pRF changes was approximately proportional to pRF size. This suggests that visual motion transforms the representation of visual space similarly throughout the visual hierarchy. Visual motion can also produce an illusory displacement of perceived stimulus position. We demonstrate perceptual displacements using the same stimulus configuration. In contrast to effects on pRF properties, perceptual displacements show only weak effects of motion speed, with far larger speed-independent effects. We describe a model where low-level mechanisms could underlie the observed effects on neural position preferences. We conclude that visual motion induces similar transformations of visuo-spatial representations throughout the visual hierarchy, which may arise through low-level mechanisms. (C) 2015 Elsevier Inc. All rights reserved.
机译:多项研究表明,视觉刺激运动会影响神经感受野和功能磁共振成像反应幅度。在这里,我们将这两种方法的结果结合起来,并通过检查视觉运动对整个人类视野图层次结构中神经位置偏好的影响来扩展它们。我们使用高场功能磁共振成像(7 T)测量了人口感受野(pRF)属性,同时在视觉皮层的大区域上表征了位置偏好。我们使用正弦波光栅在固定孔径中测量了pRF的特性,它们以不同的速度沿pRF测量的方向或正交方向移动。在检查的所有视野图(包括V1,V3A和MT +图TO1)中,在pRF首选位置和大小中找到了与方向和速度有关的变化。这些对pRF属性的影响会增加视野图的层次结构。但是,在视野图内和视野图之间,pRF变化的程度与pRF大小大致成比例。这表明视觉运动可以在整个视觉层次中类似地变换视觉空间的表示。视觉运动还可以产生感知到的刺激位置的虚幻位移。我们展示了使用相同刺激配置的知觉位移。与对pRF属性的影响相反,知觉位移仅显示运动速度的微弱影响,而与速度无关的影响则大得多。我们描述了一个模型,其中低级机制可能是对神经位置偏好的观察到的影响的基础。我们得出结论,视觉运动在整个视觉层次中引起了视觉空间表示的类似转换,这可能是通过低级机制引起的。 (C)2015 Elsevier Inc.保留所有权利。

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