论文标题
触觉粗糙度通过电动启动对虚拟光栅的感知
Tactile Roughness Perception of Virtual Gratings by Electrovibration
论文作者
论文摘要
触摸屏上触觉纹理的现实显示是触觉技术每天都使用电子设备的广泛消费者的一大步。由于无法通过触摸屏上的电动启动来明确地呈现纹理地形,因此重要的是要了解我们如何感知通过电动启动摩擦调制显示的虚拟纹理。我们调查了通过触摸屏通过电动启动显示的有机玻璃和虚拟光栅制成的真实光栅的粗糙感,以进行比较。特别是,我们对10名参与者进行了两项心理物理实验,以研究空间周期的影响以及手指对宏观大小的真实和虚拟光栅的粗糙度感知所施加的正常力。我们还记录了在实验过程中作用于参与者手指的接触力。结果表明,对真实和虚拟光栅的粗糙感是不同的。我们认为,这种差异可以通过指定渗透到光栅中的量来解释。对于真正的光栅,渗透增加了作用在手指上的切向力,而对于缺乏皮肤穿透的虚拟力,切向力随空间时期降低。在支持我们的主张时,我们还发现,增加的正常力量增加了实际光栅的可感知粗糙度,而这对虚拟光栅造成了相反的效果。这些结果与记录的真实和虚拟光栅记录的切向力曲线一致。特别是,切向力的变化速率($ df_t/dt $)是空间周期和正常力遵循的趋势,类似于对真实和虚拟光栅的粗糙度估算所获得的趋势,这表明它比切向力量的概率更好。
Realistic display of tactile textures on touch screens is a big step forward for haptic technology to reach a wide range of consumers utilizing electronic devices on a daily basis. Since the texture topography cannot be rendered explicitly by electrovibration on touch screens, it is important to understand how we perceive the virtual textures displayed by friction modulation via electrovibration. We investigated the roughness perception of real gratings made of plexiglass and virtual gratings displayed by electrovibration through a touch screen for comparison. In particular, we conducted two psychophysical experiments with 10 participants to investigate the effect of spatial period and the normal force applied by finger on roughness perception of real and virtual gratings in macro size. We also recorded the contact forces acting on the participants' finger during the experiments. The results showed that the roughness perception of real and virtual gratings are different. We argue that this difference can be explained by the amount of fingerpad penetration into the gratings. For real gratings, penetration increased tangential forces acting on the finger, whereas for virtual ones where skin penetration is absent, tangential forces decreased with spatial period. Supporting our claim, we also found that increasing normal force increases the perceived roughness of real gratings while it causes an opposite effect for the virtual gratings. These results are consistent with the tangential force profiles recorded for both real and virtual gratings. In particular, the rate of change in tangential force ($dF_t/dt$) as a function of spatial period and normal force followed trends similar to those obtained for the roughness estimates of real and virtual gratings, suggesting that it is a better indicator of the perceived roughness than the tangential force magnitude.