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Motion perception during sinusoidal smooth pursuit eye movements: signal latencies and non-linearities

机译:正弦平滑追踪眼球运动期间的运动感知:信号延迟和非线性

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摘要

Smooth pursuit eye movements add motion to the retinal image. To compensate, the visual system can combine estimates of pursuit velocity and retinal motion to recover motion with respect to the head. Little attention has been paid to the temporal characteristics of this compensation process. Here, we describe how the latency difference between the eye movement signal and the retinal signal can be measured for motion perception during sinusoidal pursuit. In two experiments, observers compared the peak velocity of a motion stimulus presented in pursuit and fixation intervals. Both the pursuit target and the motion stimulus moved with a sinusoidal profile. The phase and amplitude of the motion stimulus were varied systematically in different conditions, along with the amplitude of pursuit. The latency difference between the eye movement signal and the retinal signal was measured by fitting the standard linear model and a nonlinear variant to the observed velocity matches. We found that the eye movement signal lagged the retinal signal by a small amount. The non-linear model fitted the velocity matches better than the linear one and this difference increased with pursuit amplitude. The results support previous claims that the visual system estimates eye movement velocity and retinal velocity in a non-linear fashion and that the latency difference between the two signals is small.
机译:顺畅的追踪眼球运动可增加视网膜图像的运动。为了补偿,视觉系统可以将跟踪速度和视网膜运动的估计值结合起来,以恢复相对于头部的运动。很少有人关注这种补偿过程的时间特性。在这里,我们描述了如何在正弦曲线追踪过程中测量眼动信号和视网膜信号之间的延迟差异,以进行运动感知。在两个实验中,观察者比较了以追踪和注视间隔表示的运动刺激的峰值速度。追踪目标和运动刺激都以正弦曲线运动。运动刺激的相位和幅度在不同条件下随追赶幅度而系统地变化。通过拟合标准线性模型和观察到的速度匹配的非线性变量,可以测量眼睛运动信号和视网膜信号之间的潜伏期差异。我们发现眼球运动信号滞后了视网膜信号。非线性模型拟合的速度匹配性比线性模型好,并且该差异随追随幅度的增加而增加。该结果支持先前的说法,即视觉系统以非线性方式估计眼睛运动速度和视网膜速度,并且两个信号之间的等待时间差异很小。

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    Souman, J.; Freeman, T.;

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  • 年度 2008
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