Design, Development, and Testing of an Intelligent Wearable Robotic Exoskeleton Prototype for Upper Limb Rehabilitation

Sensors (Basel). 2021 Aug 10;21(16):5411. doi: 10.3390/s21165411.

Abstract

Neuromotor rehabilitation and recovery of upper limb functions are essential to improve the life quality of patients who have suffered injuries or have pathological sequels, where it is desirable to enhance the development of activities of daily living (ADLs). Modern approaches such as robotic-assisted rehabilitation provide decisive factors for effective motor recovery, such as objective assessment of the progress of the patient and the potential for the implementation of personalized training plans. This paper focuses on the design, development, and preliminary testing of a wearable robotic exoskeleton prototype with autonomous Artificial Intelligence-based control, processing, and safety algorithms that are fully embedded in the device. The proposed exoskeleton is a 1-DoF system that allows flexion-extension at the elbow joint, where the chosen materials render it compact. Different operation modes are supported by a hierarchical control strategy, allowing operation in autonomous mode, remote control mode, or in a leader-follower mode. Laboratory tests validate the proper operation of the integrated technologies, highlighting a low latency and reasonable accuracy. The experimental result shows that the device can be suitable for use in providing support for diagnostic and rehabilitation processes of neuromotor functions, although optimizations and rigorous clinical validation are required beforehand.

Keywords: adaptive algorithms; artificial intelligence (AI); artificial neural networks (ANN); control strategies; healthcare; rehabilitation; robotic exoskeletons; upper limbs; wearable devices.

MeSH terms

  • Activities of Daily Living
  • Artificial Intelligence
  • Exercise Therapy* / instrumentation
  • Exoskeleton Device*
  • Humans
  • Upper Extremity / injuries
  • Wearable Electronic Devices*