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역동적 스포츠 분야 응용을 위한 IMU 기반 관절각 추정에서의 표류오차 감소

Drift Reduction in IMU-based Joint Angle Estimation for Dynamic Motion-Involved Sports Applications

Journal of the Korean Society for Precision Engineering 2020;37(7):539-546.
Published online: July 1, 2020

1 국립한경대학교 기계공학과

1 Department of Mechanical Engineering, Hankyong National University

#E-mail: jklee@hknu.ac.kr, TEL: +82-31-670-5112
• Received: October 17, 2019   • Revised: April 2, 2020   • Accepted: April 17, 2020

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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    Ji Seok Choi, Chang June Lee, Jung Keun Lee
    Journal of the Korean Society for Precision Engineering.2023; 40(8): 655.     CrossRef
  • A Recurrent Neural Network for 3D Joint Angle Estimation based on Six-axis IMUs but without a Magnetometer
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    Journal of the Korean Society for Precision Engineering.2023; 40(4): 301.     CrossRef
  • Motion capture and evaluation system of football special teaching in colleges and universities based on deep learning
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Drift Reduction in IMU-based Joint Angle Estimation for Dynamic Motion-Involved Sports Applications
J. Korean Soc. Precis. Eng.. 2020;37(7):539-546.   Published online July 1, 2020
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J. Korean Soc. Precis. Eng.. 2020;37(7):539-546.   Published online July 1, 2020
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Drift Reduction in IMU-based Joint Angle Estimation for Dynamic Motion-Involved Sports Applications
Image Image Image Image
Fig. 1 Experimental setup
Fig. 2 Fig. 2Res ults of Test 1: (a) Estimation errors of Method 1(Blue) and the proposed method (Red) with respect to the reference (Black dashed) and (b) Estimation errors of Method 2(Green), Method 3(Blue) and the proposed method (Red)
Fig. 3 Results of Test 4: estimation errors of Method 2(Blue) and the proposed method (Red) with respect to the reference (Black dashed)
Fig. 4 Results of Test 5: (a) Magnitude of joint center acceleration, and (b) and (c) are estimation results of the drift reduction method without and with the CF, respectively
Drift Reduction in IMU-based Joint Angle Estimation for Dynamic Motion-Involved Sports Applications

Averaged external acceleration

(unit: m/s2)

Test 1 Test 2 Test 3
Acceleration 0.56 2.57 3.88

RMSEs of joint angle estimation

(unit: o)

Roll Pitch Yaw Average
Test 1 Method 1 11.91 6.50 32.85 17.09
Method 2 0.84 1.35 5.41 2.53
Method 3 0.82 1.18 6.03 2.68
Proposed 1.40 2.35 9.19 4.31
Test 2 Method 1 12.33 11.55 35.97 19.95
Method 2 1.00 1.77 6.52 3.10
Method 3 0.40 0.60 2.27 1.09
Proposed 1.09 1.10 1.42 1.20
Test 3 Method 1 10.79 7.50 50.20 22.83
Method 2 1.49 2.27 9.01 4.26
Method 3 1.24 0.78 2.51 1.51
Proposed 2.14 1.22 1.76 1.71
Test 4 Method 2 1.93 3.34 8.32 4.53
Proposed 1.41 0.85 1.52 1.26
Test 5 w/o CF 3.01 4.25 11.37 6.21
with CF 1.59 1.91 8.50 4.00
Table 1 Averaged external acceleration (unit: m/s2)
Table 2 RMSEs of joint angle estimation (unit: o)