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由地平线以下的角偏角确定的距离。

Distance determined by the angular declination below the horizon.

作者信息

Ooi T L, Wu B, He Z J

机构信息

Department of Biomedical Sciences, Southern College of Optometry, Memphis, Tennessee 38104, USA.

出版信息

Nature. 2001 Nov 8;414(6860):197-200. doi: 10.1038/35102562.

Abstract

A biological system is often more efficient when it takes advantage of the regularities in its environment. Like other terrestrial creatures, our spatial sense relies on the regularities associated with the ground surface. A simple, but important, ecological fact is that the field of view of the ground surface extends upwards from near (feet) to infinity (horizon). It forms the basis of a trigonometric relationship wherein the further an object on the ground is, the higher in the field of view it looks, with an object at infinity being seen at the horizon. Here, we provide support for the hypothesis that the visual system uses the angular declination below the horizon for distance judgement. Using a visually directed action task, we found that when the angular declination was increased by binocularly viewing through base-up prisms, the observer underestimated distance. After adapting to the same prisms, however, the observer overestimated distance on prism removal. Most significantly, we show that the distance overestimation as an after-effect of prism adaptation was due to a lowered perceived eye level, which reduced the object's angular declination below the horizon.

摘要

当生物系统利用其环境中的规律时,通常会更高效。与其他陆生生物一样,我们的空间感依赖于与地面相关的规律。一个简单但重要的生态学事实是,地面的视野范围从近处(脚部)向上延伸至无限远(地平线)。它构成了一种三角关系的基础,即地面上的物体离得越远,在视野中看起来就越高,无限远处的物体在地平线上被看到。在这里,我们为视觉系统利用地平线以下的角度偏斜进行距离判断这一假设提供了支持。通过一项视觉导向动作任务,我们发现当通过底朝上的棱镜进行双眼观察使角度偏斜增加时,观察者会低估距离。然而,在适应了相同的棱镜后,观察者在移除棱镜时会高估距离。最显著的是,我们表明作为棱镜适应后效应的距离高估是由于感知到的眼睛水平降低,这减少了物体在地平线以下的角度偏斜。

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