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不同的特征空间如何在皮质图谱中得到表征。

How different feature spaces may be represented in cortical maps.

作者信息

Swindale N V

机构信息

Department of Ophthalmology and Visual Sciences, University of British Columbia, 2550 Willow St., Vancouver, BC, V5Z 3N9, Canada.

出版信息

Network. 2004 Nov;15(4):217-42.

Abstract

This paper explores how different high-dimensional feature spaces might be represented in cortical maps, subject to continuity and completeness constraints. Spaces explored included products of circular variables (such as orientation), products of linear dimensions encoding scalar features (such as spatial frequency) and products of binary features. Maps were generated using the Kohonen algorithm, with uniform or non-uniform stimulus distributions. A 2D retina was always assumed to be present. Simulations were run with and without annealing. For uniform input distributions, coverage uniformity (Swindale 1991 Biol. Cybern. 65 415-24) was used to measure how well the map was able to represent the feature space. For non-uniform distributions a weighted measure of coverage uniformity was calculated. Good coverage could be achieved for up to five or six cyclic variables but was substantially worse for a similar number of uniformly distributed scalar features. For annealed maps of multi-dimensional stimuli with Gaussian distributions, the distribution of receptive field centres and the distribution of total activity evoked on the cortex matched the stimulus distribution well. For annealed maps of non-uniformly distributed binary features there was an approximately linear relationship between the area of a map devoted to a specific feature and the probability of occurrence of the feature during development. Deviations from uniform retinotopy often led to improved coverage.

摘要

本文探讨了在连续性和完整性约束条件下,不同的高维特征空间如何在皮层图谱中得以呈现。所探讨的空间包括圆形变量(如方向)的乘积、编码标量特征(如空间频率)的线性维度的乘积以及二元特征的乘积。图谱使用Kohonen算法生成,刺激分布可为均匀或非均匀分布。始终假定存在二维视网膜。模拟在有退火和无退火的情况下运行。对于均匀输入分布,采用覆盖均匀性(斯温代尔,1991年,《生物控制论》65卷,415 - 424页)来衡量图谱对特征空间的表征能力。对于非均匀分布,则计算覆盖均匀性的加权度量。对于多达五六个循环变量能够实现良好的覆盖,但对于数量相似的均匀分布标量特征,覆盖情况则要差得多。对于具有高斯分布的多维刺激的退火图谱,感受野中心的分布以及皮层上诱发的总活动分布与刺激分布匹配良好。对于非均匀分布二元特征的退火图谱,图谱中专门用于特定特征的区域与该特征在发育过程中出现的概率之间存在近似线性关系。偏离均匀视网膜拓扑结构通常会导致覆盖情况得到改善。

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