测量指垫上的触觉线索,判断物体是否比皮肤更硬更软。

Steven C Hauser, Gregory J Gerling
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引用次数: 10

摘要

区分物体的顺应性,感知“柔软”和“坚硬”,对我们掌握和操纵它的能力至关重要。皮肤表面的生物力学线索,如接触面积和力率,被认为有助于编码顺应性。然而,没有人直接测量过柔性材料的接触面积,也很少有研究认为柔性材料比指垫更柔软。在此,我们开发了一种新的方法来精确测量在给定的力和位移水平下,柔性刺激和指垫之间的接触面积。为了确定该方法的稳健性,我们对人类受试者进行了心理物理和生物力学实验。结果表明,在3牛顿的刺激峰值时的接触面积、超过刺激运动的力速率、峰值力、位移和/或达到峰值力的时间等线索有助于识别柔顺性,而接触面积的方向传播则不太重要。在更温和和更强硬的依从性之间,一些线索略显明显,尽管尚未确定。基于该方法的实用性,下一步是进行更广泛的实验,以提取编码依从性的线索混合物。这项工作的重要性在于建立触觉显示器,例如,渲染虚拟组织。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Measuring tactile cues at the fingerpad for object compliances harder and softer than the skin.

Measuring tactile cues at the fingerpad for object compliances harder and softer than the skin.

Measuring tactile cues at the fingerpad for object compliances harder and softer than the skin.

Measuring tactile cues at the fingerpad for object compliances harder and softer than the skin.

Distinguishing an object's compliance, into percepts of "softness" and "hardness," is crucial to our ability to grasp and manipulate it. Biomechanical cues at the skin's surface such as contact area and force rate have been thought to help encode compliance. However, no one has directly measured contact area with compliant materials, and few studies have considered compliances softer than the fingerpad. Herein, we developed a novel method to precisely measure the area in contact between compliant stimuli and the fingerpad, at given levels of force and displacement. To determine the method's robustness, we conducted psychophysical and biomechanical experiments with human subjects. The results indicate that cues including contact area at stimulus peak force of 3 Newtons, force rate over stimulus movement and at peak force, displacement and/or time to reach peak force may help in discriminating compliances while the directional spread of contact area is less important. Between softer and harder compliances, some cues were slightly more evident, though not yet definitively. Based upon the method's utility, the next step is to conduct broader experiments to distill the mixture of cues that encode compliance. The importance of such work lies in building haptic displays, for example, to render virtual tissues.

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