Hanson James V M, Heron James, Whitaker David
Department of Optometry, University of Bradford, Richmond Road, Bradford BD7 1DP, UK.
Exp Brain Res. 2008 Feb;185(2):347-52. doi: 10.1007/s00221-008-1282-3. Epub 2008 Jan 31.
When formulating an estimate of event time, the human sensory system has been shown to possess a degree of perceptual flexibility. Specifically, the perceived relative timing of auditory and visual stimuli is, to some extent, a product of recent experience. It has been suggested that this form of sensory recalibration may be peculiar to the audiovisual domain. Here we investigate how adaptation to sensory asynchrony influences the perceived temporal order of audiovisual, audiotactile and visuotactile stimulus pairs. Our data show that a brief period of repeated exposure to asynchrony in any of these sensory pairings results in marked changes in subsequent temporal order judgments: the point of perceived simultaneity shifts toward the level of adaptation asynchrony. We find that the size and nature of this shift is very similar in all three pairings and that sensitivity to asynchrony is unaffected by the adaptation process. In light of these findings we suggest that a single supramodal mechanism may be responsible for the observed recalibration of multisensory perceived time.
在制定事件时间估计时,人类感官系统已被证明具有一定程度的感知灵活性。具体而言,听觉和视觉刺激的感知相对时间在某种程度上是近期经验的产物。有人认为这种形式的感官重新校准可能是视听领域所特有的。在这里,我们研究了对感官异步的适应如何影响视听、听觉触觉和视觉触觉刺激对的感知时间顺序。我们的数据表明,在这些感官配对中的任何一种中,短暂重复暴露于异步会导致后续时间顺序判断发生显著变化:感知同时性的点向适应异步水平移动。我们发现,这种移动的大小和性质在所有三种配对中非常相似,并且对异步的敏感性不受适应过程的影响。根据这些发现,我们认为可能是单一的超模态机制导致了观察到的多感官感知时间的重新校准。