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The temporal dynamics of heading perception in the presence of moving objects

机译:存在运动物体时航向感知的时间动态

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摘要

Many forms of locomotion rely on the ability to accurately perceive one's direction of locomotion (i.e., heading) based on optic flow. Although accurate in rigid environments, heading judgments may be biased when independently moving objects are present. The aim of this study was to systematically investigate the conditions in which moving objects influence heading perception, with a focus on the temporal dynamics and the mechanisms underlying this bias. Subjects viewed stimuli simulating linear self-motion in the presence of a moving object and judged their direction of heading. Experiments 1 and 2 revealed that heading perception is biased when the object crosses or almost crosses the observer's future path toward the end of the trial, but not when the object crosses earlier in the trial. Nonetheless, heading perception is not based entirely on the instantaneous optic flow toward the end of the trial. This was demonstrated in Experiment 3 by varying the portion of the earlier part of the trial leading up to the last frame that was presented to subjects. When the stimulus duration was long enough to include the part of the trial before the moving object crossed the observer's path, heading judgments were less biased. The findings suggest that heading perception is affected by the temporal evolution of optic flow. The time course of dorsal medial superior temporal area (MSTd) neuron responses may play a crucial role in perceiving heading in the presence of moving objects, a property not captured by many existing models.
机译:许多形式的运动依赖于基于光流来准确地感知一个人的运动方向(即,航向)的能力。尽管在严格的环境中是准确的,但是当存在独立移动的物体时,航向判断可能会有所偏差。这项研究的目的是系统地研究运动物体影响航向感知的条件,重点是时间动态和这种偏见的潜在机制。受试者查看了在存在移动物体的情况下模拟线性自我运动的刺激,并判断了他们的前进方向。实验1和2显示,当物体在试验结束时越过或几乎越过观察者的未来路径时,航向感知会产生偏差,但当物体在试验中较早时越过时,航向感知就会有偏差。尽管如此,航向感知并非完全基于试验结束时的瞬时视力。在实验3中,通过更改试验的前半部分到呈现给受试者的最后一帧,证明了这一点。当刺激持续时间足够长,可以在移动物体越过观察者的路径之前包括试验的一部分时,航向判断的偏差就较小。这些发现表明,航向感知受光流的时间演变影响。背内侧颞上神经区域(MSTd)神经元反应的时程可能在感知运动物体存在的方向方面起着至关重要的作用,而这是许多现有模型无法捕获的。

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