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Motion Parallax from Microscopic Head Movements during Visual Fixation

机译:在视觉固定期间微观头部运动的运动视差

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摘要

Under normal viewing conditions, adjustments in body posture and involuntary head movements continually shift the eyes in space. Like all translations, these movements may yield depth information in the form of motion parallax, the differential motion on the retina of objects at different distances from the observer. However, studies on depth perception rarely consider the possible contribution of this cue, as the resulting changes in viewpoint appear too small to be of perceptual significance. Here, we quantified the parallax present during fixation in normally standing observers. We measured the trajectories followed by the eyes in space by means of a high-resolution head-tracking system and used an optical model of the eye to reconstruct the stimulus on the observer’s retina. We show that, within several meters from the observer, relatively small changes in depth yield changes in the velocity of the retinal stimulus that are well above perceivable thresholds. Furthermore, relative velocities are little influenced by fixation distance, target eccentricity, and the precise oculomotor strategy followed by the observer to maintain fixation. These results demonstrate that the parallax available during normal head-free fixation is a reliable source of depth information, which the visual system may use in a variety of tasks.
机译:在正常的观看条件下,对身体姿势的调整和不自主的头部运动会不断在空间中移动眼睛。像所有平移一样,这些运动可能会产生运动视差形式的深度信息,即距观察者不同距离的物体视网膜上的差分运动。但是,关于深度感知的研究很少考虑这种提示的可能贡献,因为由此产生的视点变化似乎太小而没有感知意义。在这里,我们量化了常驻观察者在固定过程中出现的视差。我们通过高分辨率的头部跟踪系统测量了太空中眼睛跟随的轨迹,并使用眼睛的光学模型重建了观察者视网膜上的刺激。我们显示,在距观察者几米的范围内,深度的相对较小的变化会产生远高于可感知阈值的视网膜刺激速度变化。此外,相对速度几乎不受固定距离,目标偏心率以及观察者保持固定的精确动眼策略的影响。这些结果表明,正常的无头固定过程中可用的视差是深度信息的可靠来源,视觉系统可将其用于各种任务。

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