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运动各向异性与航向检测。

Motion anisotropies and heading detection.

作者信息

Lappe M, Rauschecker J P

机构信息

Department of Zoology and Neurobiology, Ruhr University Bochum, Germany.

出版信息

Biol Cybern. 1995;72(3):261-77. doi: 10.1007/BF00201489.

Abstract

In motion-processing areas of the visual cortex in cats and monkeys, an anisotropic distribution of direction selectivities displays a preference for movements away from the fovea. This 'centrifugal bias' has been hypothetically linked to the processing of optic flow fields generated during forward locomotion. In this paper, we show that flow fields induced on the retina in many natural situations of locomotion of higher mammals are indeed qualitatively centrifugal in structure, even when biologically plausible eye movements to stabilize gaze on environmental targets are performed. We propose a network model of heading detection that carries an anisotropy similar to the one found in cat and monkey. In simulations, this model reproduces a number of psychophysical results of human heading detection. It suggests that a recently reported human disability to correctly identify the direction of heading from optic flow when a certain type of eye movement is simulated might be linked to the noncentrifugal structure of the resulting retinal flow field and to the neurophysiological anisotropies.

摘要

在猫和猴子的视觉皮层运动处理区域,方向选择性的各向异性分布表现出对远离中央凹运动的偏好。这种“离心偏向”被假设与向前运动过程中产生的光流场处理有关。在本文中,我们表明,即使在进行生物学上合理的眼球运动以稳定对环境目标的注视时,高等哺乳动物在许多自然运动情况下视网膜上诱导的流场在结构上确实定性地是离心的。我们提出了一个航向检测网络模型,该模型具有与在猫和猴子中发现的类似的各向异性。在模拟中,该模型再现了人类航向检测的一些心理物理学结果。这表明,最近报道的当模拟某种类型的眼球运动时人类难以从光流中正确识别航向方向的现象,可能与所产生的视网膜流场的非离心结构以及神经生理学各向异性有关。

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