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A Computational Model that Realizes a Sparse Representation of the Primary Visual Cortex V1

机译:实现主要Visual Cortex V1稀疏表示的计算模型

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On the basis of synchronous oscillation in the visual cortex and synchronized responses to external stimuli, we have proposed a complete neural computational model of visual information processing, which consists of multi-scale filtering, phase synchronization, and inner-product formation. In the model, firing-spike trains are topologically mapped from the retina to the cortex V1 and are synchronously decoded by neural phase-locked loops (NPLLs), and then the model forms an inner product of the outputs of the NPLLs with the receptive fields of simple cells, which are densely distributed in the visual cortex. The inner-product operation leads these simple cells to fire; the simple cells in a firing state form an activation pattern that is a reconstruction of the image of the external visual stimulus. This computational model reveals clearly a computational process of inner-product formation that is an effective approach to realizing a sparse representation. The multi-scale filtering, decoding, and inner-product operations on the visual image reflect the main properties of visual information processing, such as efficiency, simplicity, and robustness from the point of view of neural computation. This finding provides a neural computation suitable for realizing a sparse representation of external visual images and provides further insight into information processing in V1.
机译:上在视觉皮层同步振荡和对外部刺激的响应同步的基础上,我们提出了视觉信息处理,它由多尺度滤波,相位同步,和内积形成的一个完整的神经计算模型。在该模型中,发射尖峰列车拓扑从视网膜到皮质V1映射和由神经锁相环(NPLLs)同步地进行解码,然后该模型形成NPLLs的输出的内积与感受野的简单细胞,其密集分布在视觉皮层。该产品内部操作导致这些简单的细胞火灾;在击发状态的简单细胞形成即外部视觉刺激的图像的重建的激活模式。这种计算模型清楚地表明内副产物的形成是一种有效的方法来实现的稀疏表示的计算过程。多尺度滤波,解码,和可视图像上内积运算反映视觉信息处理的主要性质,例如效率,简易性和鲁棒性但从神经计算的点。这一发现提供了适合用于实现外部的视觉图像的稀疏表示一个神经计算和提供进一步的深入了解在V1的信息处理。

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