Department of Electrical Measurements, Lund University, Lund, Sweden.
Biomed Eng Online. 2010 Sep 14;9:50. doi: 10.1186/1475-925X-9-50.
The users of today's commercial prosthetic hands are not given any conscious sensory feedback. To overcome this deficiency in prosthetic hands we have recently proposed a sensory feedback system utilising a "tactile display" on the remaining amputation residual limb acting as man-machine interface. Our system uses the recorded pressure in a hand prosthesis and feeds back this pressure onto the forearm skin. Here we describe the design and technical solution of the sensory feedback system aimed at hand prostheses for trans-radial/humeral amputees. Critical parameters for the sensory feedback system were investigated.
A sensory feedback system consisting of five actuators, control electronics and a test application running on a computer has been designed and built. Firstly, we investigate which force levels were applied to the forearm skin of the user while operating the sensory feedback system. Secondly, we study if the proposed system could be used together with a myoelectric control system. The displacement of the skin caused by the sensory feedback system would generate artefacts in the recorded myoelectric signals. Accordingly, EMG recordings were performed and an analysis of the these are included. The sensory feedback system was also preliminarily evaluated in a laboratory setting on two healthy non-amputated test subjects with a computer generating the stimuli, with regards to spatial resolution and force discrimination.
We showed that the sensory feedback system generated approximately proportional force to the angle of control. The system can be used together with a myoelectric system as the artefacts, generated by the actuators, were easily removed using a simple filter. Furthermore, the application of the system on two test subjects showed that they were able to discriminate tactile sensation with regards to spatial resolution and level of force.
The results of these initial experiments in non-amputees indicate that the proposed tactile display, in its simple form, can be used to relocate tactile input from an artificial hand to the forearm and that the system can coexist with a myoelectric control systems. The proposed system may be a valuable addition to users of myoelectric prosthesis providing conscious sensory feedback during manipulation of objects.
当今商业假肢使用者没有任何有意识的感官反馈。为了克服假肢的这一缺陷,我们最近提出了一种利用“触觉显示器”作为人机接口的感觉反馈系统。我们的系统使用假肢中记录的压力,并将此压力反馈到前臂皮肤上。在这里,我们描述了旨在为桡骨/肱骨截肢者设计的手假肢的感觉反馈系统的设计和技术解决方案。研究了感觉反馈系统的关键参数。
设计并制造了由五个执行器、控制电子设备和在计算机上运行的测试应用程序组成的感觉反馈系统。首先,我们研究了当用户操作感觉反馈系统时,有多大的力施加到前臂皮肤上。其次,我们研究了所提出的系统是否可以与肌电控制系统一起使用。感觉反馈系统会对手部记录的肌电信号产生干扰。因此,我们进行了肌电图记录并对其进行了分析。还在实验室环境中对两名健康的非截肢测试对象进行了初步评估,使用计算机生成刺激,以评估空间分辨率和力辨别能力。
我们表明,感觉反馈系统生成的力与控制角度大致成比例。该系统可以与肌电系统一起使用,因为执行器产生的伪影可以使用简单的滤波器轻松去除。此外,对两名测试对象的应用表明,他们能够根据空间分辨率和力的水平来区分触觉感觉。
这些在非截肢者中的初步实验结果表明,所提出的简单形式的触觉显示器可用于将来自人工手的触觉输入重新定位到前臂上,并且该系统可以与肌电控制系统共存。所提出的系统可能是肌电假肢使用者的有价值的补充,可在操纵物体时提供有意识的感官反馈。