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更快的缩进会影响皮肤变形,从而降低柔软物体的触觉可分辨性。

Faster Indentation Influences Skin Deformation To Reduce Tactile Discriminability of Compliant Objects.

出版信息

IEEE Trans Haptics. 2023 Apr-Jun;16(2):215-227. doi: 10.1109/TOH.2023.3253256. Epub 2023 Jun 20.

Abstract

To discriminate the compliance of soft objects, we rely upon spatiotemporal cues in the mechanical deformation of the skin. However, we have few direct observations of skin deformation over time, in particular how its response differs with indentation velocities and depths, and thereby helps inform our perceptual judgments. To help fill this gap, we develop a 3D stereo imaging method to observe contact of the skin's surface with transparent, compliant stimuli. Experiments with human-subjects, in passive touch, are conducted with stimuli varying in compliance, indentation depth, velocity, and time duration. The results indicate that contact durations greater than 0.4 s are perceptually discriminable. Moreover, compliant pairs delivered at higher velocities are more difficult to discriminate because they induce smaller differences in deformation. In a detailed quantification of the skin's surface deformation, we find that several, independent cues aid perception. In particular, the rate of change of gross contact area best correlates with discriminability, across indentation velocities and compliances. However, cues associated with skin surface curvature and bulk force are also predictive, for stimuli more and less compliant than skin, respectively. These findings and detailed measurements seek to inform the design of haptic interfaces.

摘要

为了区分软物体的顺从性,我们依赖于皮肤机械变形中的时空线索。然而,我们对皮肤随时间的变形几乎没有直接观察,特别是它的响应如何随压痕速度和深度而变化,从而帮助我们进行感知判断。为了帮助填补这一空白,我们开发了一种 3D 立体成像方法来观察皮肤表面与透明、顺应性刺激物的接触。通过对人类被试者进行被动触摸实验,使用顺应性、压痕深度、速度和持续时间不同的刺激物进行实验。结果表明,大于 0.4 秒的接触持续时间可被感知区分。此外,由于它们引起的变形差异较小,因此以较高速度传递的顺应性对更难以区分。在对皮肤表面变形的详细量化中,我们发现有几个独立的线索有助于感知。特别是,总接触面积的变化率与可分辨性的关系最好,跨越了压痕速度和顺应性。然而,与皮肤相比,皮肤表面曲率和整体力相关的线索对于顺应性更高或更低的刺激物也是有预测性的。这些发现和详细的测量旨在为触觉界面的设计提供信息。

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