Radboud University Nijmegen, Donders Institute for Brain, Cognition and Behaviour, Nijmegen, The Netherlands; and.
J Neurophysiol. 2013 Dec;110(11):2661-9. doi: 10.1152/jn.00971.2012. Epub 2013 Aug 21.
It has been shown that people make systematic errors in the localization of a brief tactile stimulus that is delivered to the index finger while they are making an arm movement. Here we modeled these spatial errors with a probabilistic approach, assuming that they follow from temporal uncertainty about the occurrence of the stimulus. In the model, this temporal uncertainty converts into a spatial likelihood about the external stimulus location, depending on arm velocity. We tested the prediction of the model that the localization errors depend on arm velocity. Participants (n = 8) were instructed to localize a tactile stimulus that was presented to their index finger while they were making either slow- or fast-targeted arm movements. Our results confirm the model's prediction that participants make larger localization errors when making faster arm movements. The model, which was used to fit the errors for both slow and fast arm movements simultaneously, accounted very well for all the characteristics of these data with temporal uncertainty in stimulus processing as the only free parameter. We conclude that spatial errors in dynamic tactile perception stem from the temporal precision with which tactile inputs are processed.
已经表明,当人们进行手臂运动时,他们会对食指上短暂的触觉刺激的定位产生系统误差。在这里,我们通过概率方法对这些空间误差进行建模,假设它们是由刺激发生的时间不确定性引起的。在该模型中,这种时间不确定性会根据手臂速度转化为关于外部刺激位置的空间可能性。我们测试了该模型的预测,即定位误差取决于手臂速度。参与者(n=8)被指示在进行缓慢或快速目标手臂运动时定位触感到他们的食指。我们的结果证实了该模型的预测,即参与者在进行更快的手臂运动时会产生更大的定位误差。该模型同时用于拟合缓慢和快速手臂运动的误差,并且仅使用刺激处理中的时间不确定性作为唯一自由参数,很好地解释了所有这些数据的特征。我们得出结论,动态触觉感知中的空间误差源自触觉输入处理的时间精度。