Conversion of Upper-Limb Inertial Measurement Unit Data to Joint Angles: A Systematic Review

被引:25
作者
Fang, Zhou [1 ]
Woodford, Sarah [1 ]
Senanayake, Damith [1 ,2 ]
Ackland, David [1 ]
机构
[1] Univ Melbourne, Dept Biomed Engn, Melbourne 3052, Australia
[2] Univ Melbourne, Dept Mech Engn, Melbourne 3052, Australia
基金
澳大利亚研究理事会;
关键词
inertial sensors; optoelectronic motion analysis; sensor fusion; glenohumeral joint; wearables; IMU; MOTION CAPTURE; AMBULATORY MEASUREMENT; FUNCTIONAL CALIBRATION; ORIENTATION ESTIMATION; KALMAN FILTER; LOW-COST; SENSORS; ELBOW; VALIDATION; KINEMATICS;
D O I
10.3390/s23146535
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Inertial measurement units (IMUs) have become the mainstay in human motion evaluation outside of the laboratory; however, quantification of 3-dimensional upper limb motion using IMUs remains challenging. The objective of this systematic review is twofold. Firstly, to evaluate computational methods used to convert IMU data to joint angles in the upper limb, including for the scapulothoracic, humerothoracic, glenohumeral, and elbow joints; and secondly, to quantify the accuracy of these approaches when compared to optoelectronic motion analysis. Fifty-two studies were included. Maximum joint motion measurement accuracy from IMUs was achieved using Euler angle decomposition and Kalman-based filters. This resulted in differences between IMU and optoelectronic motion analysis of 4 degrees across all degrees of freedom of humerothoracic movement. Higher accuracy has been achieved at the elbow joint with functional joint axis calibration tasks and the use of kinematic constraints on gyroscope data, resulting in RMS errors between IMU and optoelectronic motion for flexion-extension as low as 2 degrees. For the glenohumeral joint, 3D joint motion has been described with RMS errors of 6 degrees and higher. In contrast, scapulothoracic joint motion tracking yielded RMS errors in excess of 10 degrees in the protraction-retraction and anterior-posterior tilt direction. The findings of this study demonstrate high-quality 3D humerothoracic and elbow joint motion measurement capability using IMUs and underscore the challenges of skin motion artifacts in scapulothoracic and glenohumeral joint motion analysis. Future studies ought to implement functional joint axis calibrations, and IMU-based scapula locators to address skin motion artifacts at the scapula, and explore the use of artificial neural networks and data-driven approaches to directly convert IMU data to joint angles.
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页数:24
相关论文
共 146 条
[1]   Evaluation of suitability of a micro-processing unit of motion analysis for upper limb tracking [J].
Barraza Madrigal, Jose Antonio ;
Cardiel, Eladio ;
Rogeli, Pablo ;
Leija Salas, Lorenzo ;
Munoz Guerrero, Roberto .
MEDICAL ENGINEERING & PHYSICS, 2016, 38 (08) :793-800
[2]   Concurrent Validation of 3D Joint Angles during Gymnastics Techniques Using Inertial Measurement Units [J].
Barreto, Joana ;
Peixoto, Cesar ;
Cabral, Silvia ;
Williams, Andrew Mark ;
Casanova, Filipe ;
Pedro, Bruno ;
Veloso, Antonio P. .
ELECTRONICS, 2021, 10 (11)
[3]   Comparison of the optoelectronic BTS Smart system and IMU-based MyoMotion system for the assessment of gait variables [J].
Bartoszek, Amadeusz ;
Struzik, Artur ;
Jaroszczuk, Sebastian ;
Wozniewski, Marek ;
Pietraszewski, Bogdan .
ACTA OF BIOENGINEERING AND BIOMECHANICS, 2022, 24 (01) :103-116
[4]  
Berger K., 2011, VMV, P317
[5]   Validation of a new inertial measurement unit system based on different dynamic movements for future in-field applications [J].
Bessone, Veronica ;
Hoeschele, Nadja ;
Schwirtz, Ansgar ;
Seiberl, Wolfgang .
SPORTS BIOMECHANICS, 2022, 21 (06) :685-700
[6]   Motion Analysis System (MAS) for production and ergonomics assessment in the manufacturing processes [J].
Bortolini, Marco ;
Faccio, Maurizio ;
Gamberi, Mauro ;
Pilati, Francesco .
COMPUTERS & INDUSTRIAL ENGINEERING, 2020, 139
[7]   Benefits of functional calibration for estimating elbow joint angles using magneto-inertial sensors: preliminary results [J].
Bouvier, B. ;
Savescu, A. ;
Duprey, S. ;
Dumas, R. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2014, 17 :108-109
[8]   Upper Limb Kinematics Using Inertial and Magnetic Sensors: Comparison of Sensor-to-Segment Calibrations [J].
Bouvier, Brice ;
Duprey, Sonia ;
Claudon, Laurent ;
Dumas, Raphael ;
Savescu, Adriana .
SENSORS, 2015, 15 (08) :18813-18833
[9]   Double calibration: An accurate, reliable and easy-to-use method for 3D scapular motion analysis [J].
Brochard, Sylvain ;
Lempereur, Mathieu ;
Remy-Neris, Olivier .
JOURNAL OF BIOMECHANICS, 2011, 44 (04) :751-754
[10]   Reliability and normative database of the zebris cervical range-of-motion system in healthy controls with preliminary validation in a group of patients with neck pain [J].
Cagnie, Barbara ;
Cools, Ann ;
De Loose, Veerle ;
Cambier, Dirk ;
Danneels, Lieven .
JOURNAL OF MANIPULATIVE AND PHYSIOLOGICAL THERAPEUTICS, 2007, 30 (06) :450-455