School of Computing, Engineering and Intelligent System, Ulster University Magee Campus, Northland Rd, BT48 7JL Londonderry, Ireland.
School of Science, Letterkenny Institute of Technology, Port Rd, Gortlee, F92 FC93 Letterkenny, Ireland.
Sensors (Basel). 2021 Feb 24;21(5):1555. doi: 10.3390/s21051555.
Capturi ng hand motions for hand function evaluations is essential in the medical field. For many allied health professionals, measuring joint range of motion (ROM) is an important skill. While the universal goniometer (UG) is the most used clinical tool for measuring joint ROM, developments in current sensor technology are providing clinicians with more measurement possibilities than ever. For rehabilitation and manual dexterity evaluations, different data gloves have been developed. However, the reliability and validity of sensor technologies when used within a smart device remain somewhat unclear. This study proposes a novel electronically controlled sensor monitoring system (ECSMS) to obtain the static and dynamic parameters of various sensor technologies for both data gloves and individual sensor evaluation. Similarly, the ECSMS was designed to closely mimic a human finger joint, to have total control over the joint, and to have an exceptionally high precision. In addition, the ECSMS device can closely mimic the movements of the finger from hyperextension to a maximum ROM beyond any person's finger joint. Due to the modular design, the ECSMS's sensor monitoring board is independent and extensible to include various technologies for examination. Additionally, by putting these sensory devices through multiple tests, the system accurately measures the characteristics of any rotary/linear sensor in and out of a glove. Moreover, the ECSMS tracks the movement of all types of sensors with respect to the angle values of finger joints. In order to demonstrate the effectiveness of sensory devices, the ECSMS was first validated against a recognised secondary device with an accuracy and resolution of 0.1°. Once validated, the system simultaneously determines real angles alongside the hand monitoring device or sensor. Due to its unique design, the system is independent of the gloves/sensors that were tested and can be used as a gold standard to realise more medical equipment/applications in the future. Consequently, this design greatly enhances testing measures within research contact and even non-contact systems. In conclusion, the ECSMS will benefit in the design of data glove technologies in the future because it provides crucial evidence of sensor characteristics. Similarly, this design greatly enhances the stability and maintainability of sensor assessments by eliminating unwanted errors. These findings provide ample evidence for clinicians to support the use of sensory devices that can calculate joint motion in place of goniometers.
捕获手部运动用于手部功能评估在医学领域至关重要。对于许多辅助医疗专业人员来说,测量关节活动范围 (ROM) 是一项重要技能。虽然通用量角器 (UG) 是测量关节 ROM 最常用的临床工具,但当前传感器技术的发展为临床医生提供了比以往任何时候都更多的测量可能性。对于康复和手动灵巧性评估,已经开发出不同的数据手套。然而,智能设备中使用的传感器技术的可靠性和有效性仍然有些不清楚。本研究提出了一种新颖的电子控制传感器监测系统 (ECSMS),用于获取数据手套和单个传感器评估中各种传感器技术的静态和动态参数。同样,ECSMS 旨在紧密模仿人手指关节,完全控制关节,并具有极高的精度。此外,ECSMS 设备可以紧密模仿手指从过伸到超出任何人手指关节的最大 ROM 的运动。由于采用模块化设计,ECSMS 的传感器监测板是独立的,可以扩展以包含各种检查技术。此外,通过对这些传感器设备进行多项测试,该系统可以准确测量手套内外任何旋转/线性传感器的特性。此外,ECSMS 跟踪所有类型传感器相对于手指关节角度值的运动。为了展示传感器设备的有效性,首先使用具有 0.1°精度和分辨率的公认的辅助设备对 ECSMS 进行验证。验证后,该系统会与手部监测设备或传感器一起同时确定实际角度。由于其独特的设计,该系统独立于经过测试的手套/传感器,可以用作未来更多医疗设备/应用的黄金标准。因此,这种设计极大地增强了研究接触甚至非接触系统中的测试措施。总之,ECSMS 将有益于未来数据手套技术的设计,因为它提供了传感器特性的关键证据。同样,这种设计通过消除不必要的错误,极大地提高了传感器评估的稳定性和可维护性。这些发现为临床医生提供了充分的证据,支持使用可以计算关节运动而不是量角器的传感器设备。