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The role of activity in corpus callosum development in the visual cortex

机译:活性在视觉皮层中的胼callosum开发中的作用

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Many previous models have explained how ocular dominance- and orientation selective columns could develop in the visual cortex. However, few models have investigated the topographic arrangement of interhemispheric connections between primaryvisual areas. A new model of the development of corpus callosum connections in cat visual cortex was recently introduced (Hely, 1999). The model showed how the observed hour-glass pattern of callosal receptive field (RF) positions arises as a consequence of the retinotopic mapping onto the cortex. In the cat, callosal connections only form between cells with visual field RFs located close to the vertical meridian. In contrast in rat visual cortex, callosal connections also form between cells with RFs inthe peripheral visual field. This cannot be accounted for using a Hebbian rule based on spatial information alone. The current generic model of primary visual cortex was extended by including optic-flow/motion information. This extra input enabled cellswith peripheral RFs fields in the medial cortex to make connections to the opposite hemisphere. The results from the model suggest that in some species motion information may affect the development of connections in primary visual cortex.
机译:以前的许多模型已经解释了眼睛主张和定向选择柱如何在视觉皮层中可以发展。然而,很少有模型研究了初步区域之间的间隙连接的地形排列。最近介绍了猫视觉皮层中的语料库胼consince的开发模型(几点,1999)。该模型表明,由于视网膜运动映射到皮质上的后果,所观察到的愈伤组织接收领域(RF)位置是如何产生的。在CAT中,调用连接只能在靠近垂直子午线的视野RF之间形成的单元格。相反,在大鼠视觉皮层中,调用连接也在具有RFS Inthe Visual场的细胞之间形成。这不能根据单独的空间信息使用Hebbian规则。通过包括光学流/运动信息包括光学流量/运动信息,延长了当前的初级视觉皮层的通用模型。这种额外的输入使能中介皮质中的CellScith主体RFS字段能够与相反的半球进行连接。该模型的结果表明,在某些物种中,运动信息可能会影响原发性视觉皮质中连接的发展。

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