Rehabilitation Robotics Laboratory, School of Mechanical Engineering, University of Leeds, Leeds LS2 9JT, UK.
Sensors (Basel). 2023 Oct 12;23(20):8415. doi: 10.3390/s23208415.
Haptic information is essential in everyday activities, especially for visually impaired people in terms of real-world navigation. Since human haptic sensory processing is nonlinear, asymmetric vibrations have been widely studied to create a pulling sensation for the delivery of directional haptic cues. However, the design of an input control signal that generates asymmetric vibrations has not yet been parameterised. In particular, it is unclear how to quantify the asymmetry of the output vibrations to create a better pulling sensation. To better understand the design of an input control signal that generates haptic directional cues, we evaluated the effect of the pulling sensations corresponding to the three adjustable parameters (i.e., delay time, ramp-down step length, and cut-off voltage) in a commonly applied step-ramp input signal. The results of a displacement measurement and a psychophysical experiment demonstrate that when the quantified asymmetry ratio is in a range of 0.3430-0.3508 with an optimised cut-off voltage for our hand-held device, the haptic directional cues are better perceived by participants. Additionally, the results also showed a superior performance in haptic delivery by shear forces than normal forces.
触觉信息在日常活动中至关重要,特别是对于视障人士在现实世界导航方面。由于人类触觉感知处理是非线性的,不对称振动已被广泛研究用于产生用于传递方向触觉提示的拉动感。然而,用于生成不对称振动的输入控制信号的设计尚未参数化。特别是,尚不清楚如何量化输出振动的不对称性以产生更好的拉动感。为了更好地理解生成触觉方向提示的输入控制信号的设计,我们评估了对应于三个可调参数(即延迟时间、斜坡下降步长和截止电压)的拉动感在常用的阶跃斜坡输入信号中的效果。位移测量和心理物理实验的结果表明,当量化的不对称比在 0.3430-0.3508 范围内并且针对我们的手持式设备优化截止电压时,参与者更好地感知到触觉方向提示。此外,结果还表明,在剪切力而不是法向力的触觉传递方面表现更优。