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Multi-scale parallel temperature error processing for dual-mass MEMS gyroscope

delete2016-07-01
delete26
PRE
AI
C
Chong Shen
J
Jie Li
X
Xiaoming Zhang
J
Jun Tang
H
Huiliang Cao
刘俊 (Jun Liu) *
DOI:10.1016/j.sna.2016.04.055delete
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Abstract

Abstract

En 中文
A temperature error processing method for a dual-mass micro-electromechanical system (MEMS) gyroscope based on multi-scale parallel model is proposed. At first, a sample entropy based bounded ensemble empirical mode decomposition (SE-BEEMD) is proposed to decompose the original signal into different scales, include noise-only scale, mixed scale and drift scale; then forward linear prediction (FLP) is employed to eliminate the noise at mixed scale and extreme learning machine (ELM) based model is employed to compensate the drift at drift scale, the two steps are carried out paralleled; at last the final results can be obtained after reconstruction. Experimental results show that: (1) compared to tradition serial model, the proposed parallel model can eliminate the temperature errors more effectively, and each parameter of Allan analysis is improved. Specially, the quantification noise reduced from 0.035 mu rad to 9.93e4 mu rad, angle random walk reduced from 2.13e-5/s(1/2) to 7.94e-6/s(1/2), bias instability reduced from 5.28e-4/s to 4.79e-4/s, rate random walk from 0.012/s(3/2) to 0.092/s(3/2) and angular rate ramp reduced from 0.013/s(2) to 0.011/s(2); (2) compared to traditional time consuming neural networks, the ELM has the best modeling accurate and shortest training time, which would be valuable for online temperature drift modeling and compensation. (C) 2016 Elsevier B.V. All rights reserved.
Keywords:
MEMS gyroscope
Temperature error processing
EMD
ELM
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Journal

Sensors and Actuators A-Physical cover
Sensors and Actuators A-Physical
IF:
4.9
Papers:
1.5W
Citations:
3.3W

Organization

N
North University of China
Scholars:
1.1W
Papers: 6.9K
Citations: 7.7K