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Application of Multiple Signal Classification Algorithm to Frequency Estimation in Coherent Dual-Frequency Lidar

机译:多信号分类算法在相干双频激光雷达频率估计中的应用

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Coherent dual-frequency Lidar (CDFL) is a new development of Lidar which dramatically enhances the ability to decrease the influence of atmospheric interference by using dual-frequency laser to measure the range and velocity with high precision. Based on the nature of CDFL signals, we propose to apply the multiple signal classification (MUSIC) algorithm in place of the fast Fourier transform (FFT) to estimate the phase differences in dual-frequency Lidar. In the presence of Gaussian white noise, the simulation results show that the signal peaks are more evident when using MUSIC algorithm instead of FFT in condition of low signal-noise-ratio (SNR), which helps to improve the precision of detection on range and velocity, especially for the long distance measurement systems.
机译:相干双频激光雷达(CDFL)是激光雷达的一项新进展,它通过使用双频激光高精度地测量距离和速度,大大增强了减少大气干扰影响的能力。根据CDFL信号的性质,我们建议应用多信号分类(MUSIC)算法代替快速傅里叶变换(FFT)来估计双频激光雷达的相位差。在存在高斯白噪声的情况下,仿真结果表明,在低信噪比(SNR)的情况下,使用MUSIC算法而不是FFT时,信号峰值更为明显,这有助于提高对距离和距离的检测精度。速度,特别是对于长距离测量系统。

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