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对猫纹状皮层中简单感受野的二维伽柏滤波器模型的评估。

An evaluation of the two-dimensional Gabor filter model of simple receptive fields in cat striate cortex.

作者信息

Jones J P, Palmer L A

机构信息

Department of Anatomy, University of Pennsylvania School of Medicine, Philadelphia 19104-6058.

出版信息

J Neurophysiol. 1987 Dec;58(6):1233-58. doi: 10.1152/jn.1987.58.6.1233.

DOI:10.1152/jn.1987.58.6.1233
PMID:3437332
Abstract
  1. Using the two-dimensional (2D) spatial and spectral response profiles described in the previous two reports, we test Daugman's generalization of Marcelja's hypothesis that simple receptive fields belong to a class of linear spatial filters analogous to those described by Gabor and referred to here as 2D Gabor filters. 2. In the space domain, we found 2D Gabor filters that fit the 2D spatial response profile of each simple cell in the least-squared error sense (with a simplex algorithm), and we show that the residual error is devoid of spatial structure and statistically indistinguishable from random error. 3. Although a rigorous statistical approach was not possible with our spectral data, we also found a Gabor function that fit the 2D spectral response profile of each simple cell and observed that the residual errors are everywhere small and unstructured. 4. As an assay of spatial linearity in two dimensions, on which the applicability of Gabor theory is dependent, we compare the filter parameters estimated from the independent 2D spatial and spectral measurements described above. Estimates of most parameters from the two domains are highly correlated, indicating that assumptions about spatial linearity are valid. 5. Finally, we show that the functional form of the 2D Gabor filter provides a concise mathematical expression, which incorporates the important spatial characteristics of simple receptive fields demonstrated in the previous two reports. Prominent here are 1) Cartesian separable spatial response profiles, 2) spatial receptive fields with staggered subregion placement, 3) Cartesian separable spectral response profiles, 4) spectral response profiles with axes of symmetry not including the origin, and 5) the uniform distribution of spatial phase angles. 6. We conclude that the Gabor function provides a useful and reasonably accurate description of most spatial aspects of simple receptive fields. Thus it seems that an optimal strategy has evolved for sampling images simultaneously in the 2D spatial and spatial frequency domains.
摘要
  1. 利用前两份报告中描述的二维(2D)空间和光谱响应曲线,我们检验了道格曼对马尔采亚假设的推广,即简单感受野属于一类线性空间滤波器,类似于加博尔所描述的滤波器,在此称为二维加博尔滤波器。2. 在空间域中,我们找到了在最小二乘误差意义下(使用单纯形算法)拟合每个简单细胞二维空间响应曲线的二维加博尔滤波器,并且我们表明残余误差没有空间结构,在统计上与随机误差无法区分。3. 尽管我们的光谱数据无法采用严格的统计方法,但我们也找到了一个拟合每个简单细胞二维光谱响应曲线的加博尔函数,并观察到残余误差在各处都很小且无结构。4. 作为二维空间线性度的一种测定方法,而加博尔理论的适用性取决于此,我们比较了从上述独立的二维空间和光谱测量中估计出的滤波器参数。来自两个域的大多数参数估计高度相关,表明关于空间线性度的假设是有效的。5. 最后,我们表明二维加博尔滤波器的函数形式提供了一个简洁的数学表达式,它包含了前两份报告中所展示的简单感受野的重要空间特征。这里突出的特征有:1)笛卡尔可分离的空间响应曲线,2)具有交错子区域布局的空间感受野,3)笛卡尔可分离的光谱响应曲线,4)对称轴不包括原点的光谱响应曲线,以及5)空间相位角的均匀分布。6. 我们得出结论,加博尔函数为简单感受野的大多数空间方面提供了有用且相当准确的描述。因此,似乎已经演化出了一种在二维空间和空间频率域中同时对图像进行采样的最优策略。

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An evaluation of the two-dimensional Gabor filter model of simple receptive fields in cat striate cortex.对猫纹状皮层中简单感受野的二维伽柏滤波器模型的评估。
J Neurophysiol. 1987 Dec;58(6):1233-58. doi: 10.1152/jn.1987.58.6.1233.
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The two-dimensional spectral structure of simple receptive fields in cat striate cortex.猫纹状皮层中简单感受野的二维光谱结构。
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The two-dimensional spatial structure of simple receptive fields in cat striate cortex.猫纹状皮层中简单感受野的二维空间结构。
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Spatiotemporal organization of simple-cell receptive fields in the cat's striate cortex. I. General characteristics and postnatal development.猫纹状皮层中简单细胞感受野的时空组织。I. 一般特征与出生后发育
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Spatial structure and symmetry of simple-cell receptive fields in macaque primary visual cortex.猕猴初级视觉皮层中简单细胞感受野的空间结构与对称性
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