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控制人机界面中电触觉刺激的感觉强度。

Controlling sensation intensity for electrotactile stimulation in human-machine interfaces.

机构信息

Neuroscience Program and Medical Scholars Program, University of Illinois at Urbana-Champaign, Urbana, IL, USA.

Dept. of Bioengineering, University of Illinois at Urbana-Champaign, Urbana, IL, USA.

出版信息

Sci Robot. 2018 Apr 25;3(17). doi: 10.1126/scirobotics.aap9770.

Abstract

A barrier to practical use of electrotactile stimulation for haptic feedback has been large variability in perceived sensation intensity due to changes in the impedance of the electrode-skin interface, such as when electrodes peel or users sweat. Here, we show how to significantly reduce this variability by modulating stimulation parameters in response to measurements of impedance. Our method derives from three contributions. First, we created a model between stimulation parameters and impedance at constant perceived sensation intensity by looking at the peak pulse energy and phase charge. Our model fits experimental data better than previous models (mean R > 0.9) and holds over a larger set of conditions (subjects, sessions, magnitudes of sensation, stimulation locations, electrode sizes). Second, we implemented a controller that regulates perceived sensation intensity by using our model to derive a new current amplitude and pulse duration in response to changes in impedance. Our controller accurately predicts subject-chosen stimulation parameters at constant sensation intensity (mean R > 0.9). Third, we demonstrated as a proof-of-concept on two subjects with below-elbow amputations-using a prosthesis with electrotactile touch feedback-that our controller can regulate sensation intensity in response to large impedance changes that occur in activities of daily living. These results make electrotactile stimulation for human-machine interfaces more reliable during activities of daily living.

摘要

电触觉刺激在触觉反馈中的实际应用受到电极-皮肤界面阻抗变化的影响,例如电极剥落或用户出汗,导致感知感觉强度的可变性很大。在这里,我们展示了如何通过响应阻抗测量来调节刺激参数,从而显著降低这种可变性。我们的方法源于三个贡献。首先,我们通过研究峰值脉冲能量和相位电荷,在恒定感知感觉强度下创建了一个刺激参数与阻抗之间的模型。我们的模型比以前的模型(平均 R>0.9)更能拟合实验数据,并且适用于更大的条件集(受试者、会话、感觉幅度、刺激位置、电极尺寸)。其次,我们实现了一个控制器,通过使用我们的模型来推导新的电流幅度和脉冲持续时间,从而调节感知感觉强度。我们的控制器可以准确预测在恒定感觉强度下受试者选择的刺激参数(平均 R>0.9)。第三,我们在两名上肢截肢者(使用带有电触觉反馈的假肢)身上进行了概念验证,证明我们的控制器可以调节感觉强度,以适应日常生活活动中发生的大阻抗变化。这些结果使人机界面中的电触觉刺激在日常生活活动中更加可靠。

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