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Human tactile detection of within- and inter-finger spatiotemporal phase shifts of low-frequency vibrations

机译:低频振动的手指内和手指间时空相移的人类触觉检测

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摘要

When we touch an object, the skin copies its surface shape/texture, and this deformation pattern shifts according to the objects movement. This shift pattern directly encodes spatio-temporal “motion” information of the event, and has been detected in other modalities (e.g., inter-aural time differences for audition and first-order motion for vision). Since previous studies suggested that mechanoreceptor-afferent channels with small receptive field and slow temporal characteristics contribute to tactile motion perception, we tried to tap the spatio-temporal processor using low-frequency sine-waves as primitive probes in our previous study. However, we found that asynchrony of sine-wave pair presented on adjacent fingers was difficult to detect. Here, to take advantage of the small receptive field, we investigated within-finger motion and found above threshold performance when observers touched localized sine-wave stimuli with one finger. Though observers could not perceptually discriminate rightward from leftward motion, the adaptation occurred in a direction-sensitive way: the motion/asynchronous detection was impaired by adapting to asynchronous stimuli moving in the same direction. These findings are consistent with a possibility that human can directly encode short-range spatio-temporal patterns of skin deformation by using phase-shifted low-frequency components, in addition to detecting short- and long-range motion using energy shifts of high-frequency components.
机译:当我们触摸物体时,皮肤会复制其表面形状/纹理,并且该变形模式会根据物体的移动而移动。该移位模式直接对事件的时空“运动”信息进行编码,并已通过其他方式(例如,听觉的听觉间时差和视觉的一阶运动)进行了检测。由于以前的研究表明,具有较小的接收场和较慢的时间特征的机械感受器-通道通道有助于触觉运动感知,因此我们在先前的研究中尝试使用低频正弦波作为原始探测器来利用时空处理器。但是,我们发现很难检测到出现在相邻手指上的正弦波对的异步性。在这里,为了利用小的感受野,我们研究了手指内部的运动,并发现观察者用一根手指触摸局部正弦波刺激时的阈值性能以上。尽管观察者无法从左向右感知到区别,但自适应是以方向敏感的方式发生的:通过适应向同一方向移动的异步刺激,运动/异步检测受到损害。这些发现与人类可以通过使用相移的低频成分直接编码皮肤变形的短时空时空模式以及使用高频能量位移检测短时和长时运动的可能性相一致。组件。

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