Zahradka Nicole, Behboodi Ahad, Wright Henry, Bodt Barry, Lee Samuel
Biomechanics and Movement Science Program, University of Delaware, Newark, DE 19713, USA.
Department of Physical Therapy, University of Delaware, Newark, DE 19713, USA.
Sensors (Basel). 2019 May 30;19(11):2471. doi: 10.3390/s19112471.
Functional electrical stimulation systems are used as neuroprosthetic devices in rehabilitative interventions such as gait training. Stimulator triggers, implemented to control stimulation delivery, range from open- to closed-loop controllers. Finite-state controllers trigger stimulators when specific conditions are met and utilize preset sequences of stimulation. Wearable sensors provide the necessary input to differentiate gait phases during walking and trigger stimulation. However, gait phase detection is associated with inherent system delays. In this study, five stimulator triggers designed to compensate for gait phase detection delays were tested to determine which trigger most accurately delivered stimulation at the desired times of the gait cycle. Motion capture data were collected on seven typically-developing children while walking on an instrumented treadmill. Participants wore one inertial measurement unit on each ankle and gyroscope data were streamed into the gait phase detection algorithm. Five triggers, based on gait phase detection, were used to simulate stimulation to five muscle groups, bilaterally. For each condition, stimulation signals were collected in the motion capture software via analog channels and compared to the desired timing determined by kinematic and kinetic data. Results illustrate that gait phase detection is a viable finite-state control, and appropriate system delay compensations, on average, reduce stimulation delivery delays by 6.7% of the gait cycle.
功能性电刺激系统在诸如步态训练等康复干预中被用作神经假体装置。用于控制刺激传递的刺激器触发器范围从开环控制器到闭环控制器。有限状态控制器在满足特定条件时触发刺激器,并利用预设的刺激序列。可穿戴传感器提供必要的输入,以区分步行过程中的步态阶段并触发刺激。然而,步态阶段检测与固有的系统延迟相关。在本研究中,测试了五种旨在补偿步态阶段检测延迟的刺激器触发器,以确定哪种触发器在步态周期的期望时间最准确地传递刺激。在七名发育正常的儿童在装有仪器的跑步机上行走时收集了运动捕捉数据。参与者在每个脚踝上佩戴一个惯性测量单元,陀螺仪数据被输入到步态阶段检测算法中。基于步态阶段检测的五个触发器被用于双侧模拟对五个肌肉群的刺激。对于每种情况,通过模拟通道在运动捕捉软件中收集刺激信号,并与由运动学和动力学数据确定的期望时间进行比较。结果表明,步态阶段检测是一种可行的有限状态控制,并且适当的系统延迟补偿平均可将刺激传递延迟减少步态周期的6.7%。