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Stimulation current control for load-aware electrotactile haptic rendering: Modeling and simulation

机译:用于感知负载的触觉触觉渲染的刺激电流控制:建模和仿真

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摘要

This paper presents our work on generalization of the first-order fingertip skin bioimpedance model that is presented to the instantaneous stimulation current. The generalized dynamic model is based on our experimental findings that one of the bioimpedance parameters, stratum corneum resistance R_p, is inversely related to the stimulation current. The model is necessitated by the driver of our constant voltage driver (CVD)-based electrotactile haptic rendering system, which features closed-loop, load-aware (i.e. fingertip skin bioimpedance-aware) capability in contrast to constant-current-driver (CCD) systems. Relying on this model and on-line estimated bioimpedance parameters and by employing a direct model reference adaptive control (MRAC) method, the stimulation current output to the fingertip skin tracking a desired pulsed reference current is realized. The modeling and control results based on the generalized model are shown to be preliminarily valid from simulation when compared to experimental results. This work will be useful in developing a user friendly load-aware electrotactile haptic rendering system that is capable of adapting the stimulation current from changing electro-bioimpedance conditions of the fingertip skin.
机译:本文介绍了我们针对瞬时刺激电流呈现的一阶指尖皮肤生物阻抗模型的一般化工作。广义动力学模型基于我们的实验发现,其中生物阻抗参数之一角质层电阻R_p与刺激电流成反比。基于我们的基于恒压驱动器(CVD)的触觉触觉渲染系统的驱动器需要该模型,该系统具有闭环,可感知负载(即指尖皮肤生物阻抗感知)的功能,而不是恒流驱动器(CCD) )系统。依靠此模型和在线估计的生物阻抗参数,并通过采用直接模型参考自适应控制(MRAC)方法,可以实现输出到指尖皮肤的刺激电流,该电流跟踪所需的脉冲参考电流。与实验结果相比,基于通用模型的建模和控制结果从仿真中初步显示是有效的。这项工作将有助于开发用户友好的负载感知型电触觉触觉渲染系统,该系统能够根据指尖皮肤的电生物阻抗条件的变化来适应刺激电流。

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