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对任意运动轨迹绕地垂轴的偏航旋转进行方向辨别阈值建模。

Modeling direction discrimination thresholds for yaw rotations around an earth-vertical axis for arbitrary motion profiles.

机构信息

Department of Human Perception, Cognition and Action, Max Planck Institute for Biological Cybernetics, Spemannstrasse 38, 72076 Tübingen, Germany.

出版信息

Exp Brain Res. 2012 Jul;220(1):89-99. doi: 10.1007/s00221-012-3120-x. Epub 2012 May 24.

Abstract

Understanding the dynamics of vestibular perception is important, for example, for improving the realism of motion simulation and virtual reality environments or for diagnosing patients suffering from vestibular problems. Previous research has found a dependence of direction discrimination thresholds for rotational motions on the period length (inverse frequency) of a transient (single cycle) sinusoidal acceleration stimulus. However, self-motion is seldom purely sinusoidal, and up to now, no models have been proposed that take into account non-sinusoidal stimuli for rotational motions. In this work, the influence of both the period length and the specific time course of an inertial stimulus is investigated. Thresholds for three acceleration profile shapes (triangular, sinusoidal, and trapezoidal) were measured for three period lengths (0.3, 1.4, and 6.7 s) in ten participants. A two-alternative forced-choice discrimination task was used where participants had to judge if a yaw rotation around an earth-vertical axis was leftward or rightward. The peak velocity of the stimulus was varied, and the threshold was defined as the stimulus yielding 75 % correct answers. In accordance with previous research, thresholds decreased with shortening period length (from ~2 deg/s for 6.7 s to ~0.8 deg/s for 0.3 s). The peak velocity was the determining factor for discrimination: Different profiles with the same period length have similar velocity thresholds. These measurements were used to fit a novel model based on a description of the firing rate of semi-circular canal neurons. In accordance with previous research, the estimates of the model parameters suggest that velocity storage does not influence perceptual thresholds.

摘要

理解前庭感知的动态很重要,例如,这对于提高运动模拟和虚拟现实环境的逼真度,或诊断患有前庭问题的患者都有帮助。之前的研究已经发现,对于旋转运动的方向辨别阈值,取决于瞬态(单个周期)正弦加速度刺激的周期长度(频率的倒数)。然而,自身运动很少是纯正弦的,到目前为止,还没有提出考虑旋转运动的非正弦刺激的模型。在这项工作中,研究了惯性刺激的周期长度和特定时间过程的影响。在十个参与者中,测量了三种加速度轮廓形状(三角形、正弦和梯形)的三个周期长度(0.3、1.4 和 6.7 s)的阈值。使用了两种替代的强制选择辨别任务,参与者必须判断围绕地垂轴的俯仰旋转是向左还是向右。刺激的峰值速度是变化的,阈值定义为产生 75%正确答案的刺激。与之前的研究一致,阈值随周期长度的缩短而降低(从 6.7 s 的约 2°/s 降低到 0.3 s 的约 0.8°/s)。峰值速度是辨别力的决定因素:具有相同周期长度的不同轮廓具有相似的速度阈值。这些测量结果用于拟合一种新的模型,该模型基于半规管神经元放电率的描述。与之前的研究一致,模型参数的估计表明,速度存储不会影响感知阈值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ef9/3375416/2b3fe12d05e1/221_2012_3120_Fig1_HTML.jpg

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