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A Novel Noise Elimination Method for MEMS Sensor

机译:MEMS传感器的新型噪声消除方法

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摘要

It is inevitable that measured signals are contaminated with noise when MEMS sensor is used for an outdoor measurement. So the obtained signals need noise elimination,which is one of key technologies for signal conditioning. In this paper, a novel noise elimination method based on algorithm of blind source separation (BSS) for MEMS sensor is proposed to separate the source signals from the mixed signals with noises. The BSS algorithm based on maximum signal noise ratio (SNR) is a method of global optimal property, using the characteristic that SNR is maximal when statistically independent source signals are completely separated.The algorithm has a low computational complexity for instantaneous linear mixture signals. It is effective to acquire the source signals from the mixed signals with noises obtained by MEMS sensor,and is successfully verified by simulation experiment of BSS algorithm.The result of noise elimination experiment has achieved signal conditioning and eliminates ambient noises for MEMS sensor signals.
机译:当将MEMS传感器用于室外测量时,不可避免地会导致测量信号被噪声污染。因此获得的信号需要消除噪声,这是信号调理的关键技术之一。提出了一种基于盲源分离(BSS)算法的MEMS传感器噪声消除方法,将噪声与混合信号分离。基于最大信噪比(BS)的BSS算法是一种全局最优属性方法,其特点是当统计独立的源信号完全分离时SNR最高。对于瞬时线性混合信号,该算法的计算复杂度较低。有效地从混合信号中提取出具有MEMS传感器噪声的源信号,并通过BSS算法的仿真实验成功验证。噪声消除实验的结果实现了信号调理,消除了MEMS传感器信号的环境噪声。

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