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Bailly, G.

Publications and source records attributed to Bailly, G..

2 recordsLinked to original sources

Pleasant touch mediated by Aβ-afferents remains primarily dependent on tactile velocity

Pleasantness of touch is classically attributed to C-tactile (CT) afferents, based on multiple evidence showing identical inverted-U curves as a function of velocities for pleasantness and CT activity. Recent research suggests that pleasant touch is not solely mediated by CT activation, pointing to a potential contribution of A{beta}-afferents and cognitive processes, potentially through the mechanism of velocity inference. To investigate the contributions of A{beta}-afferents, our study compared the illusion of vibrotactile apparent motion, which recruits almost exclusively A{beta}-afferents, and brush stroking, which additionally recruits CT afferents. A first experiment investigated the impact of stroke contrast on the pleasantness of 3 cm/s strokes by mingling them with pleasant (1 and 10 cm/s) or less pleasant (0.5 and 30 cm/s) ones. A second experiment in virtual reality probed velocity inference from visual cue by testing how congruence between visual and tactile velocity affects perceived pleasantness. The results showed that the pleasantness of strokes targeting A{beta}-afferents also follows an inverted U-curve and that 3 cm/s reference strokes remained unaffected by the speed of mixed strokes regardless of the condition. Even though differences in incongruence were not clearly perceived, discrepant visual velocities influenced the pleasantness of vibrotactile 1 cm/s strokes, for which the pleasantness ratings followed the visual rather than the tactile velocity. Overall, vibrotactile pleasantness can be mediated by A{beta}-afferents, but most probably through velocity inference since only vibrotactile strokes were prone to visual illusion. Because not clearly detected, visual inferences could have played a stronger role through larger speed discrepancies.

neuroscience↗

Tactile Sensitivity to the Frequency Spectrum of Complex Vibrotactile Signals

Haptic interactions with objects induce complex vibrotactile signals that are central to tactile perception. Despite the broad literature on vibrotactile perception, there is surprisingly little knowledge of the sensory processing of complex tactile signals made of multiple frequencies. To fill this gap, the study reported here investigated the impact of the constitutive pure tones of a complex vibrotactile signal on its perception. Participants completed a 3-AFC task, in which they were asked to identify an odd signal among two complex references. The odd signal was created by removing one pure tone from the reference, which varied in spectral composition, harmonicity, and inter-frequency intervals. Each reference signal was made of either two, three, or four pure tones. The results revealed that the removed pure tones value as well as the inter-frequency interval play a significant role on participants performance whereas changes in harmonicity, complexity have little impact. In addition, the results showed that the smaller the ratio between the removed frequency and the lowest one of the reference signals, the better the participants capacity to identify the one with a missing tone. Overall, the detection of a missing tone in a complex signal predominantly depends on the tones frequency value of the removed signal suggesting a tactile sensitivity to the frequency spectrum of complex vibrotactile signals. NEW & NOTEWORTHYThis research reports an investigation of the respective roles of frequency range, harmonicity, and complexity on human perception of vibrotactile signals. The results revealed that only pure tones that are close to the lower end of the frequency spectrum are noticed when they are missing. This finding sheds new light on the mechanisms of frequency selectivity in touch.

neuroscience↗