2019
DOI: 10.1155/2019/3154845
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Fusion Algorithm‐Based Temperature Compensation Method for High‐G MEMS Accelerometer

Abstract: In recent years, High-G MEMS accelerometers have been widely used in aviation, medicine, and other fields. So it is extremely important to improve the accuracy and performance of High-G MEMS accelerometers. For this purpose, we propose a fusion algorithm that combines EMD, wavelet thresholding, and temperature compensation to process measurement data from a High-G MEMS accelerometer. In the fusion algorithm, the original accelerometer signal is first decomposed by EMD to obtain the intrinsic mode function (IMF… Show more

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Cited by 10 publications
(8 citation statements)
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“…With this in mind, it is necessary to perform noise reduction on the original signal before ELM training. The wavelet transform, with its good time-frequency localization and multi-resolution characteristics, can overcome a series of challenges in non-stationary signal processing, and wavelet threshold noise reduction can effectively remove noise while maintaining signal singularity [ 37 , 38 , 39 ].…”
Section: Random Error Modelling Based On Igwpso-elmmentioning
confidence: 99%
“…With this in mind, it is necessary to perform noise reduction on the original signal before ELM training. The wavelet transform, with its good time-frequency localization and multi-resolution characteristics, can overcome a series of challenges in non-stationary signal processing, and wavelet threshold noise reduction can effectively remove noise while maintaining signal singularity [ 37 , 38 , 39 ].…”
Section: Random Error Modelling Based On Igwpso-elmmentioning
confidence: 99%
“…In order to accurately verify the rationality and usability of the designed sensor, LS-DYNA 19.2 finite element simulation software was used to produce and solve the whole process of projectile intrusion into the concrete target plate and obtain the overload signal of the smart fuze inside the projectile during the projectile intrusion, which supports the accurate layer counting identification of the subsequent fuze [ 26 ].…”
Section: Design Principlementioning
confidence: 99%
“…After the threshold processing, the reconstruction coefficient is obtained, and the denoising signal is obtained from the reconstruction coefficient. The noise standard value σ is expressed as follows, of which median is the median of wavelet multi-resolution decomposition coefficient [ 23 , 24 ]. …”
Section: Algorithmmentioning
confidence: 99%