Microelectromechnical Systems Inertial Measurement Unit Error Modelling and Error Analysis for Low-cost Strapdown Inertial Navigation System

Authors

  • R. Ramalingam Anna University, Chrompet, Chennai
  • G. Anitha Anna University, Chrompet, Chennai
  • J. Shanmugam Tagore Engineering College, Vandalur, Chennai

DOI:

https://doi.org/10.14429/dsj.59.1571

Keywords:

Error modelling, Allan variance, wavelet decomposition, microelectromechnical systems, MEMS, inertial measurement unit, IMU, strapown inertial navigation system

Abstract

This paper presents error modelling and error analysis of microelectromechnical systems (MEMS) inertial measurement unit (IMU) for a low-cost strapdown inertial navigation system (INS). The INS consists of IMU and navigation processor. The IMU provides acceleration and angular rate of the vehicle in all the three axes. In this paper, errors that affect the MEMS IMU, which is of low cost and less volume, are stochastically modelled and analysed using Allan variance. Wavelet decomposition has been introduced to remove the high frequency noise that affects the sensors to obtain the original values of angular rates and accelerations with less noise. This increases the accuracy of the strapdown INS. The results show the effect of errors in the output of sensors, easy interpretation of random errors by Allan variance, the increase in the accuracy when wavelet decomposition is used for denoising inertial sensor raw data.

Defence Science Journal, 2009, 59(6), pp.650-658, DOI:http://dx.doi.org/10.14429/dsj.59.1571

Author Biographies

R. Ramalingam, Anna University, Chrompet, Chennai

Madras Institute of Technology, Anna University, Chrompet, Chennai

G. Anitha, Anna University, Chrompet, Chennai

Madras Institute of Technology, Anna University, Chrompet, Chennai

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Published

2009-11-01

How to Cite

Ramalingam, R., Anitha, G., & Shanmugam, J. (2009). Microelectromechnical Systems Inertial Measurement Unit Error Modelling and Error Analysis for Low-cost Strapdown Inertial Navigation System. Defence Science Journal, 59(6), 650–658. https://doi.org/10.14429/dsj.59.1571