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Information maximization principle explains the emergence of complex cell-like neurons

机译:信息最大化原理解释了复杂细胞样神经元的出现

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摘要

We propose models and a method to qualitatively explain the receptive field properties of complex cells in the primary visual cortex. We apply a learning method based on the information maximization principle in a feedforward network, which comprises an input layer of image patches, simple cell-like first-output-layer neurons, and second-output-layer neurons (Model 1). The information maximization results in the emergence of the complex cell-like receptive field properties in the second-output-layer neurons. After learning, second-output-layer neurons receive connection weights having the same size from two first-output-layer neurons with sign-inverted receptive fields. The second-output-layer neurons replicate the phase invariance and iso-orientation suppression. Furthermore, on the basis of these results, we examine a simplified model showing the emergence of complex cell-like receptive fields (Model 2). We show that after learning, the output neurons of this model exhibit iso-orientation suppression, cross-orientation facilitation, and end stopping, which are similar to those found in complex cells. These properties of model neurons suggest that complex cells in the primary visual cortex become selective to features composed of edges to increase the variability of the output.
机译:我们提出模型和方法来定性解释初级视觉皮层中复杂细胞的感受野特性。我们将基于信息最大化原理的学习方法应用于前馈网络,该网络包括图像块的输入层,简单的细胞状第一输出层神经元和第二输出层神经元(模型1)。信息最大化导致第二输出层神经元中出现复杂的细胞样感受野特性。学习后,第二输出层神经元从具有符号反转感受野的两个第一输出层神经元接收具有相同大小的连接权重。第二个输出层神经元复制相位不变性和等向抑制。此外,基于这些结果,我们检查了一个简化的模型,该模型显示了复杂的细胞样受体场的出现(模型2)。我们表明,学习后,该模型的输出神经元表现出同向抑制,交叉定向促进和终止终止,这与在复杂细胞中发现的相似。模型神经元的这些特性表明,初级视觉皮层中的复杂细胞对由边缘组成的特征具有选择性,从而增加了输出的可变性。

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