ARTSLab, Scuola Superiore Sant'Anna, Pontedera (PI), Pisa, Italy.
Med Eng Phys. 2011 Apr;33(3):386-90. doi: 10.1016/j.medengphy.2010.10.019. Epub 2010 Nov 18.
This study describes the development and evaluation of a platform for the investigation of the human tactile ability. Specifically, it enables precise and reproducible application of time-varying 3D force stimuli to the skin of an immobilized human limb. We proceeded in the following steps: (1) programming a low-cost haptic interface to apply time-varying 3D force stimuli to a fixed rigid target, (2) implementing a combined feed-forward/feedback controller to improve the platform's precision and reliability in force stimulation, (3) determining the optimal tuning of the control loop parameters and (4) evaluating the system's performances when applying time-varying 3D force stimuli to an immobilized human finger pad. The system's performances were evaluated in terms of the accuracy and repeatability when delivering standard 3D force stimuli, i.e., stimuli with specified force components in the normal and skin tangential directions. Within the range of forces tested (5 N in various directions), the maximum difference between the actual force and the desired value during static phases was <30 mN (accuracy) and the root-mean-square of the standard deviation (repeatability) was 15 mN during static phases and <75 mN during dynamic phases.
本研究描述了一个用于研究人类触觉能力的平台的开发和评估。具体来说,它能够精确且可重复地将时变的 3D 力刺激应用于固定的人体肢体的皮肤。我们按照以下步骤进行:(1)编程一个低成本触觉接口,以将时变的 3D 力刺激应用于固定的刚性目标;(2)实现一个前馈/反馈控制器的组合,以提高平台在力刺激方面的精度和可靠性;(3)确定控制回路参数的最佳调整;(4)评估该系统在将时变的 3D 力刺激应用于固定的人体指垫时的性能。该系统的性能是根据其在传递标准 3D 力刺激(即具有指定的法向和切向力分量的刺激)时的准确性和重复性来评估的。在所测试的力范围内(各个方向的 5N),在静态阶段,实际力与期望力之间的最大差异<30mN(准确性),在静态阶段标准偏差的均方根(重复性)为 15mN,在动态阶段<75mN。