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Modeling temporal response characteristics of V1 neurons with a dynamic normalization model

机译:用动态归一化模型建模V1神经元的时间响应特征

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We present a dynamic normalization model to characterize both the transient and the steady-state components of V1 simple and complex cell responses. Primary receptive field properties are chiefly determined by the convergence of LGN afferents. These linear responses are rectified, and subjected to shunting inhibition through cortical feedback, which accounts for the non-linear characteristics of the neuronal responses. The duration of the transient response is determined by the time delay and the low-pass filtering of the cortical feedbackl IN addition to accounting for basic non-linear behaviors such as response saturation and cross-orientation inhibition, the model is also able to reproduce several short-term contrast and pattern-selective adaptation effects.
机译:我们提出了一个动态归一化模型来表征V1简单和复杂单元格响应的瞬态和稳态分量。主要的感受野性质主要取决于LGN传入的收敛。这些线性反应经过矫正,并通过皮质反馈受到分流抑制,这解释了神经元反应的非线性特征。瞬态响应的持续时间由时间延迟和皮质反馈的低通滤波确定,除了考虑诸如响应饱和度和交叉取向抑制之类的基本非线性行为外,该模型还能够重现短期对比和模式选择适应效果。

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