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The Complex Structure of Receptive Fields in the Middle Temporal Area

机译:中部时域接受场的复杂结构

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摘要

Neurons in the middle temporal area (MT) are often viewed as motion detectors that prefer a single direction of motion in a single region of space. This assumption plays an important role in our understanding of visual processing, and models of motion processing in particular. We used extracellular recordings in area MT of awake, behaving monkeys (M. mulatta) to test this assumption with a novel reverse correlation approach. Nearly half of the MT neurons in our sample deviated significantly from the classical view. First, in many cells, direction preference changed with the location of the stimulus within the receptive field. Second, the spatial response profile often had multiple peaks with apparent gaps in between. This shows that visual motion analysis in MT has access to motion detectors that are more complex than commonly thought. This complexity could be a mere byproduct of imperfect development, but can also be understood as the natural consequence of the non-linear, recurrent interactions among laterally connected MT neurons. An important direction for future research is to investigate whether these in homogeneities are advantageous, how they can be incorporated into models of motion detection, and whether they can provide quantitative insight into the underlying effective connectivity.
机译:颞中部(MT)的神经元通常被视为运动检测器,它们倾向于在单个空间区域中选择单个运动方向。这个假设在我们对视觉处理,尤其是运动处理的模型的理解中起着重要的作用。我们使用处于活动状态的清醒的行为猴子(M. mulatta)的MT区域进行细胞外记录,以一种新颖的反向相关方法测试该假设。与经典观点相比,我们样本中近一半的MT神经元明显偏离。首先,在许多细胞中,方向偏好随刺激在接受野内的位置而变化。其次,空间响应曲线通常具有多个峰,并且在它们之间存在明显的间隙。这表明MT中的视觉运动分析可以使用比通常认为更复杂的运动检测器。这种复杂性可能仅仅是不完善的发展的副产品,但也可以理解为横向连接的MT神经元之间非线性,反复相互作用的自然结果。未来研究的一个重要方向是研究这些同质性是否具有优势,如何将它们整合到运动检测模型中,以及它们是否可以提供对基本有效连通性的定量见解。

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