Estimation of Walking Exercise Intensity Using 3-D Acceleration Sensor

被引:11
|
作者
Kurihara, Yosuke [1 ]
Watanabe, Kajiro [2 ]
Yoneyama, Mitsuru [3 ]
机构
[1] Seikei Univ, Dept Comp & Informat Sci, Fac Sci & Technol, Tokyo 1808633, Japan
[2] Hosei Univ, Dept Syst Control Engn, Fac Engn, Tokyo 1848584, Japan
[3] Mitsubishi Chem Grp Sci & Technol Res Ctr Inc, Kanagawa 2278502, Japan
关键词
Accelerometer; exercise intensity; metabolic equivalents (METs); walking;
D O I
10.1109/TSMCC.2011.2130522
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
This paper describes a method to estimate the measure of human energy expenditure referred to as metabolic equivalents (METs). The measure is defined by an index of the amount of energy a person expends through normal daily activities. The average MET values are defined by the type of activity; for example, brisk walking corresponds to 4 METs. The index lists 107 activities and the corresponding MET values. However, to determine the energy consumed in a day, each type of activity and its duration must be noted, which is inconvenient and time consuming. Here, we consider a quantitative method to estimate the METs from the acceleration of waist motion in our activities. We consider a simple physical model of amoving human body, define the power output for an activity, and then relate the maximum oxygen intake rate per minute, which is proportional to the energy expenditure per minute with the power output. Based on these factors, we developed an automatic MET estimator using a 3-D accelerometer. The system was examined during various selected activities, and the validity of the MET estimation method was tested in activities, excluding very intense activities. The exercise intensity for walking at various speeds was estimated with an average error of -0.6 METs.
引用
收藏
页码:495 / 500
页数:6
相关论文
共 50 条
  • [31] Sensor speeds 3-D measurements
    不详
    MANUFACTURING ENGINEERING, 2004, 133 (06): : 38 - +
  • [32] Sensor detects acceleration in 3D
    不详
    ELECTRONICS WORLD, 1997, 103 (1732): : 270 - 270
  • [33] Optical 3-d coordinate measurement using a range sensor and photogrammetry
    Peipe, J
    Andrä, P
    VIDEOMETRICS VII, 2003, 5013 : 110 - 116
  • [34] Hardware acceleration for 3-D radiation dose calculation
    Zhou, Bo
    Hu, X. Sharon
    Chen, Danny Z.
    Yu, Cedric X.
    2007 IEEE INTERNATIONAL CONFERENCE ON APPLICATION-SPECIFIC SYSTEMS, ARCHITECTURES, AND PROCESSORS, 2007, : 290 - +
  • [35] 3-D Retinal Curvature Estimation
    Chanwimaluang, Thitiporn
    Fan, Guoliang
    Yen, Gary G.
    Fransen, Stephen R.
    IEEE TRANSACTIONS ON INFORMATION TECHNOLOGY IN BIOMEDICINE, 2009, 13 (06): : 997 - 1005
  • [36] A Study on Handling System for Cloth Using 3-D Vision Sensor
    Kobayashi, Hiroaki
    Hata, Seiji
    Hojoh, Hirotaka
    Hamada, Toshihiro
    Kawai, Harunobu
    IECON 2008: 34TH ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY, VOLS 1-5, PROCEEDINGS, 2008, : 3289 - +
  • [37] ESTIMATION OF TOTAL VOLUME BY 3-D
    DUFFY, B
    HILTERMAN, FJ
    GEOPHYSICS, 1980, 45 (07) : 1218 - 1218
  • [38] Bound on The Estimation of A 3-D Trajectory from A Stationary Passive Sensor and Its Attainability
    Yang, Kaipei
    Bar -Shalom, Yaakov
    Willett, Peter
    Ben-Dov, R.
    Milgrom, B.
    2018 21ST INTERNATIONAL CONFERENCE ON INFORMATION FUSION (FUSION), 2018, : 166 - 170
  • [39] HiPER 3-D: An Omnidirectional Sensor for High Precision Environmental 3-D Reconstruction
    Marino, Francescomaria
    De Ruvo, Pasquale
    De Ruvo, Gianluigi
    Nitti, Massimiliano
    Stella, Ettore
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2012, 59 (01) : 579 - 591
  • [40] MOTION ESTIMATION USING 3-D INFINITE FREQUENCY RESOLUTION ANALYSIS
    Ueda, Takaaki
    Hirobayashi, Shigeki
    2010 IEEE INTERNATIONAL CONFERENCE ON ACOUSTICS, SPEECH, AND SIGNAL PROCESSING, 2010, : 1186 - 1189