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猴子平稳跟踪眼球运动的精度随时间变化过程。

Time course of precision in smooth-pursuit eye movements of monkeys.

作者信息

Osborne Leslie C, Hohl Sonja S, Bialek William, Lisberger Stephen G

机构信息

Sloan-Swartz Center for Theoretical Neurobiology, University of California at San Francisco, San Francisco, California 94143-0444, USA.

出版信息

J Neurosci. 2007 Mar 14;27(11):2987-98. doi: 10.1523/JNEUROSCI.5072-06.2007.

Abstract

To evaluate the nature and possible sources of variation in sensory-motor behavior, we measured the signal-to-noise ratio for the initiation of smooth-pursuit eye movements as a function of time and computed thresholds that indicate how well the pursuit system discriminates small differences in the direction, speed, or time of onset of target motion. Thresholds improved rapidly as a function of time and came close to their minima during the interval when smooth eye movement is driven only by visual motion inputs. Many features of the data argued that motor output and sensory discrimination are limited by the same noise source. Pursuit thresholds reached magnitudes similar to those for perception: <2-3 degrees of direction, approximately 11-15% of target speed, and 8 ms of change in the time of onset of target motion. Pursuit and perceptual thresholds had similar dependencies on the duration of the motion stimulus and showed similar effects of target speed. The evolution of information about direction of target motion followed the same time course in pursuit behavior and in a previously reported sample of neuronal responses from extrastriate area MT. Changing the form of the sensory input while keeping the motor response fixed had significant effects on the signal-to-noise ratio in pursuit for direction discrimination, whereas holding the sensory input constant while changing the combination of muscles used for the motor output did not. We conclude that noise in sensory processing of visual motion provides the major source of variation in the initiation of pursuit.

摘要

为了评估感觉运动行为变化的性质和可能来源,我们测量了作为时间函数的平稳跟踪眼球运动起始的信噪比,并计算了阈值,这些阈值表明跟踪系统区分目标运动方向、速度或起始时间微小差异的能力。阈值随时间迅速改善,并在仅由视觉运动输入驱动平稳眼球运动的间隔期间接近其最小值。数据的许多特征表明,运动输出和感觉辨别受同一噪声源的限制。跟踪阈值达到与感知阈值相似的量级:方向小于2 - 3度,约为目标速度的11 - 15%,目标运动起始时间变化8毫秒。跟踪阈值和感知阈值对运动刺激持续时间具有相似的依赖性,并表现出相似的目标速度效应。在跟踪行为和先前报道的来自纹外区域MT的神经元反应样本中,关于目标运动方向的信息演变遵循相同的时间进程。在保持运动反应不变的同时改变感觉输入的形式,对跟踪方向辨别中的信噪比有显著影响,而在保持感觉输入不变的同时改变用于运动输出的肌肉组合则没有这种影响。我们得出结论,视觉运动感觉处理中的噪声是跟踪起始变化的主要来源。

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