Residual motion of upper limbs in individuals who experienced cervical spinal cord injury (CSCI) is vital to achieve functional independence. Several interventions were developed to restore shoulder range of motion (ROM) in CSCI patients. However, shoulder ROM assessment in clinical practice is commonly limited to use of a simple goniometer. Conventional goniometric measurements are operator-dependent and require significant time and effort. Therefore, innovative technology for supporting medical personnel in objectively and reliably measuring the efficacy of treatments for shoulder ROM in CSCI patients would be extremely desirable. This study evaluated the validity of a customized wireless wearable sensors (Inertial Measurement Units—IMUs) system for shoulder ROM assessment in CSCI patients in clinical setting. Eight CSCI patients and eight healthy controls performed four shoulder movements (forward flexion, abduction, and internal and external rotation) with dominant arm. Every movement was evaluated with a goniometer by different testers and with the IMU system at the same time. Validity was evaluated by comparing IMUs and goniometer measurements using Intraclass Correlation Coefficient (ICC) and Limits of Agreement (LOA). inter-tester reliability of IMUs and goniometer measurements was also investigated. Preliminary results provide essential information on the accuracy of the proposed wireless wearable sensors system in acquiring objective measurements of the shoulder movements in CSCI patients.

An Inertial Measurement Unit-Based Wireless System for Shoulder Motion Assessment in Patients with Cervical Spinal Cord Injury: A Validation Pilot Study in a Clinical Setting / Bravi, Riccardo; Caputo, Stefano; Jayousi, Sara; Martinelli, Alessio; Biotti, Lorenzo; Nannini, Ilaria; Cohen, Erez James; Quarta, Eros; Grasso, Stefano; Lucchesi, Giacomo; Righi, Gabriele; Del Popolo, Giulio; Mucchi, Lorenzo; Minciacchi, Diego. - In: SENSORS. - ISSN 1424-8220. - ELETTRONICO. - 21:(2021), pp. 1-25. [10.3390/s21041057]

An Inertial Measurement Unit-Based Wireless System for Shoulder Motion Assessment in Patients with Cervical Spinal Cord Injury: A Validation Pilot Study in a Clinical Setting

Bravi, Riccardo;Caputo, Stefano;Jayousi, Sara;Martinelli, Alessio;Biotti, Lorenzo;Cohen, Erez James;Quarta, Eros;Grasso, Stefano;Righi, Gabriele;Del Popolo, Giulio;Mucchi, Lorenzo
;
Minciacchi, Diego
2021

Abstract

Residual motion of upper limbs in individuals who experienced cervical spinal cord injury (CSCI) is vital to achieve functional independence. Several interventions were developed to restore shoulder range of motion (ROM) in CSCI patients. However, shoulder ROM assessment in clinical practice is commonly limited to use of a simple goniometer. Conventional goniometric measurements are operator-dependent and require significant time and effort. Therefore, innovative technology for supporting medical personnel in objectively and reliably measuring the efficacy of treatments for shoulder ROM in CSCI patients would be extremely desirable. This study evaluated the validity of a customized wireless wearable sensors (Inertial Measurement Units—IMUs) system for shoulder ROM assessment in CSCI patients in clinical setting. Eight CSCI patients and eight healthy controls performed four shoulder movements (forward flexion, abduction, and internal and external rotation) with dominant arm. Every movement was evaluated with a goniometer by different testers and with the IMU system at the same time. Validity was evaluated by comparing IMUs and goniometer measurements using Intraclass Correlation Coefficient (ICC) and Limits of Agreement (LOA). inter-tester reliability of IMUs and goniometer measurements was also investigated. Preliminary results provide essential information on the accuracy of the proposed wireless wearable sensors system in acquiring objective measurements of the shoulder movements in CSCI patients.
2021
21
1
25
Goal 3: Good health and well-being for people
Goal 9: Industry, Innovation, and Infrastructure
Bravi, Riccardo; Caputo, Stefano; Jayousi, Sara; Martinelli, Alessio; Biotti, Lorenzo; Nannini, Ilaria; Cohen, Erez James; Quarta, Eros; Grasso, Stefano; Lucchesi, Giacomo; Righi, Gabriele; Del Popolo, Giulio; Mucchi, Lorenzo; Minciacchi, Diego
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1224422
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