Our sense of touch is essential and permeates in interactions involving natural explorations and affective communications. For instance, we routinely judge the ripeness of fruit at the grocery store, caress the arm of a spouse to offer comfort, and stroke textiles to gauge their softness. Meanwhile, interactive displays that provide tactile feedback are becoming normal and ubiquitous in our daily lives, and are extending rich and immersive interactions into augmented and virtual reality. To replicate touch sensation and make virtual objects feel tangible, such feedback will need to relay a sense of compliance, or softness, one of the key dimensions underlying haptic perception. As our understanding of softness perception remains incomplete, this study seeks to understand exploratory strategies and perceptual cues that may optimally encode material softness. Specifically, we employ methods of computational finite element modeling, biomechanical experimentation, psychophysical evaluation, and data-driven analysis. Overall, this work may aid in engineering the next-generation wearable haptic displays, which must be more tangible, compatible, and perceptually naturalistic.
翻译:我们的触摸感至关重要,并且渗透到涉及自然探索和感官交流的相互作用中。例如,我们经常判断杂货店水果的成熟程度,抚摸配偶的手臂以提供舒适,抚摸纺织品以测量其软性。与此同时,提供触觉反馈的互动展示在我们日常生活中正在变得正常和无处不在,并且正在将丰富和隐蔽的相互作用扩展到扩大的虚拟现实中。为了复制触摸感并使虚拟物体感到有形,这种反馈将需要传递一种顺从感或软性,这是偶然感背后的一个关键层面。由于我们对软性感的理解仍然不完整,本研究寻求理解探索性战略和概念提示,这些策略和提示可能最能将材料软性编码起来。具体地说,我们采用了计算定型元素模型、生物机械实验、精神物理评估和数据驱动分析等方法。总体而言,这项工作可能有助于下一代磨损性显示的工程,这些显示必须更加具体、兼容和概念自然。