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Computational modeling of the neural representation of object shape in the primate ventral visual system

机译:灵长类动物腹侧视觉系统中对象形状的神经表示的计算建模

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摘要

Neurons in successive stages of the primate ventral visual pathway encode the spatial structure of visual objects. In this paper, we investigate through computer simulation how these cell firing properties may develop through unsupervised visually-guided learning. Individual neurons in the model are shown to exploit statistical regularity and temporal continuity of the visual inputs during training to learn firing properties that are similar to neurons in V4 and TEO. Neurons in V4 encode the conformation of boundary contour elements at a particular position within an object regardless of the location of the object on the retina, while neurons in TEO integrate information from multiple boundary contour elements. This representation goes beyond mere object recognition, in which neurons simply respond to the presence of a whole object, but provides an essential foundation from which the brain is subsequently able to recognize the whole object.
机译:灵长类动物腹侧视觉通路连续阶段的神经元编码视觉对象的空间结构。在本文中,我们通过计算机仿真研究了如何通过无监督的视觉引导学习来发展这些细胞激发特性。显示模型中的单个神经元在训练期间学习视觉输入的统计规律性和时间连续性,以学习类似于V4和TEO中神经元的放电特性。 V4中的神经元编码对象内部特定位置处的边界轮廓元素的构图,而不管对象在视网膜上的位置如何,而TEO中的神经元则集成了来自多个边界轮廓元素的信息。这种表示超出了单纯的对象识别,在这种识别中,神经元仅对整个对象的存在做出响应,但为大脑随后识别整个对象提供了必要的基础。

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