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Layered Network Computations by Parallel Nonlinear Processing

机译:通过并行非线性处理分层网络计算

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Among visual processings in the visual networks, movement detections are carried out in the visual cortex. The visual cortex for the movement detection, consist of two layered networks, called the primary visual cortex (V1), followed by the middle temporal area (MT). In the biological visual neural networks, a characteristic feature is nonlinear functions, which will play important roles in the visual systems. In this paper, V1 and MT model networks, are decomposed into sub-asymmetrical networks. By the optimization of the asymmetric networks, movement detection equations are derived. Then, it was clarified that asymmetric networks with the even-odd nonlinearity combined , are fundamental in the movement detection. These facts are applied to two layered V1 and MT networks, in which it was clarified that the second layer MT has an efficient ability to detect the movement.
机译:在视觉网络中的视觉处理中,在视觉皮质中执行移动检测。用于移动检测的视觉皮层由两个分层网络组成,称为主视觉皮质(V1),然后是中间时间区域(MT)。在生物视觉神经网络中,特征是非线性函数,这将在视觉系统中起重要角色。在本文中,V1和MT模型网络被分解成副不对称网络。通过优化非对称网络,导出移动检测方程。然后,澄清了具有偶数非线性的非对称网络组合,是运动检测的基础。这些事实应用于两个分层V1和MT网络,其中澄清了第二层MT具有检测运动的有效能力。

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