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Method and apparatus for unsupervised training of input synapses of primary visual cortex simple cells and other neural circuits

机译:初级视觉皮层单细胞和其他神经回路的输入突触的无监督训练的方法和设备

摘要

Certain aspects of the present disclosure present a technique for unsupervised training of input synapses of primary visual cortex (V1) simple cells and other neural circuits. The proposed unsupervised training method utilizes simple neuron models for both Retinal Ganglion Cell (RGC) and V1 layers. The model simply adds the weighted inputs of each cell, wherein the inputs can have positive or negative values. The resulting weighted sums of inputs represent activations that can also be positive or negative. In an aspect of the present disclosure, the weights of each V1 cell can be adjusted depending on a sign of corresponding RGC output and a sign of activation of that V1 cell in the direction of increasing the absolute value of the activation. The RGC-to-V1 weights can be positive and negative for modeling ON and OFF RGCs, respectively.
机译:本公开的某些方面提出了一种用于对初级视觉皮层(V1)简单细胞和其他神经回路的输入突触进行无监督训练的技术。所提出的无监督训练方法对视网膜神经节细胞(RGC)和V1层均使用简单的神经元模型。该模型仅将每个像元的加权输入相加,其中输入可以具有正值或负值。输入的所得加权总和表示激活也可以是正数或负数。在本公开的一个方面,可以根据相应的RGC输出的符号和该V1单元的激活符号在增加激活的绝对值的方向上调整每个V1单元的权重。分别对ON和OFF RGC建模时,RGC-to-V1权重可以为正,也可以为负。

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