Gradient Methodology for 3-Axis Accelerometer Static Calibration

被引:0
|
作者
Draganova, Katarina [1 ]
Lassak, Miroslav [2 ]
Lipovsky, Pavol [1 ]
Kan, Viktor [1 ]
Kliment, Tomas [1 ]
机构
[1] Tech Univ Kosice, Fac Aeronaut, Rampova 7, Kosice, Slovakia
[2] Honeywell Inc, Flight Controls CoE, Brno, Czech Republic
来源
INTERNATIONAL CONFERENCE ON MILITARY TECHNOLOGIES (ICMT 2015) | 2015年
关键词
accelerometer; calibration; inertial sensor; neural network; SYSTEM;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Knowledge of real parameters of the sensors' transfer characteristics is very important for a correct system function. The paper presents a novel easy-to-use iterative calibration algorithm for a vector field sensor's accuracy improvement, which can be successfully applied to the estimation of the calibration constants of the 3-axis accelerometers that are commonly used in the role of inertial sensors. The theory is based on the neural network that creates an inverse function to the uncalibrated sensor's transfer function. Learning process of the neural network uses a gradient methodology applying total differential on the scalar error equation. The analyzed theoretical principles are supplemented by simulations and experimental measurements. The performed simulations and experiments confirmed that the algorithm successfully converges, which enables a precise estimation of the calibration constants. Other advantage of this methodology lies in the attitude independent sensor discrete random rotation in the 3D space during the calibration procedure without the need of any precision positioning calibration platforms.
引用
收藏
页码:521 / 525
页数:5
相关论文
共 50 条
  • [1] GRADIENT METHODOLOGY FOR 3-AXIS MAGNETOMETER SCALAR CALIBRATION
    Kliment, Tomas
    Praslicka, Dusan
    Draganova, Katarina
    Blazek, Josef
    Journal of Electrical Engineering-Elektrotechnicky Casopis, 2015, 66 (07): : 157 - 160
  • [2] A STATIC CALIBRATION OF MEMS 3-AXIS ACCELEROMETER USING A GENETIC ALGORITHM
    Marinov, Marin
    Petrov, Zhivo
    SCIENTIFIC JOURNAL OF SILESIAN UNIVERSITY OF TECHNOLOGY-SERIES TRANSPORT, 2019, 105 : 157 - 168
  • [3] Static and Dynamic Modeling of a 3-Axis Thermal Accelerometer
    Silva, C. S.
    Dias, R. A.
    Viana, J. C.
    Pontes, A. J.
    Rocha, L. A.
    26TH EUROPEAN CONFERENCE ON SOLID-STATE TRANSDUCERS, EUROSENSOR 2012, 2012, 47 : 973 - 976
  • [4] A microinjected 3-axis thermal accelerometer
    Rocha, L. A.
    Silva, C. S.
    Cerqueira, M. F.
    Ribeiro, J. F.
    Goncalves, L. M.
    Pontes, A. J.
    Viana, J. C.
    EUROSENSORS XXV, 2011, 25
  • [5] Attitude-independent 3-axis accelerometer calibration based on adaptive neural network
    Draganova, Katarina
    Lassak, Miroslav
    Praslicka, Dusan
    Kan, Viktor
    28TH EUROPEAN CONFERENCE ON SOLID-STATE TRANSDUCERS (EUROSENSORS 2014), 2014, 87 : 1255 - 1258
  • [6] Fall detection system with 3-axis accelerometer
    Aphairaj, D.
    Kitsonti, M.
    Thanapornsawan, T.
    SIAM PHYSICS CONGRESS 2019 (SPC2019): PHYSICS BEYOND DISRUPTION SOCIETY, 2019, 1380
  • [7] Electrostatically levitated spherical 3-axis accelerometer
    Toda, R
    Takeda, N
    Murakoshi, T
    Nakamura, S
    Esashi, M
    FIFTEENTH IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS, TECHNICAL DIGEST, 2002, : 710 - 713
  • [8] CMOS Implementation of a 3-axis Thermal Convective Accelerometer
    Mailly, Frederick
    Huy Binh Nguyen
    Latorre, Laurent
    Nouet, Pascal
    2014 IEEE SENSORS, 2014,
  • [9] A 3-Axis MEMS Capacitive Accelerometer Free of Cross Axis Sensitivity
    Momen, Hadi Ghasemzadeh
    Tavakoli, Hadi
    Sani, Ebrahim Abbaspour
    2016 24TH IRANIAN CONFERENCE ON ELECTRICAL ENGINEERING (ICEE), 2016, : 1491 - 1494
  • [10] SOI 3-axis Accelerometer with a Stress Reduction Structure
    Fujiyoshi, M.
    Omura, Y.
    Funabashi, H.
    Akashi, T.
    Hata, Y.
    Nonomura, Y.
    Nakayama, T.
    Yamada, H.
    2014 IEEE SENSORS, 2014, : 1920 - 1923