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Sequential-Based Range-Doppler Estimation With Fast and Slow Time Sub-Nyquist Sampling
DOI:10.1109/TCSII.2022.3167550.png)
摘要
En 中文
Range-Doppler detection with pulse sequences exists widely in Radar, sonar, ultrasound imaging, and many other engineering applications. However, the classic methods require a high sampling rate for wideband pulses, and the Doppler estimation with slow time sub-Nyquist sampling may suffer from the phase wrapping. In this brief, a sequential-based range-Doppler estimation method with fast and slow time sub-Nyquist sampling is proposed. Utilizing the finite rate of innovation (FRI) theory, the range parameters can be estimated from several Fourier coefficients. The fast time sampling rate is determined by the number of the unknown parameters, instead of the signal bandwidth. Then, the aliasing-free Doppler parameters are estimated by the subspace method and the Chinese remainder theorem (CRT). The sequential-based method enables to estimate each Doppler parameter separately, and the Doppler estimation is transformed into a robust CRT problem, which enhances the robustness of the Doppler estimation. Simulation and hardware results demonstrate the effectiveness of the proposed method.
Keyword:
Estimation
Cathode ray tubes
Circuits and systems
Doppler shift
Baseband
Radar imaging
Wrapping
Range-Doppler
finite rate of innovation
Chinese remainder theory
subspace method
sub-Nyquist sampling
期刊
I
IF:
4.9
论文数:
8.8K
被引数:
2.5W
机构
引用论文
Fall Detection Using Standoff Radar-Based Sensing and Deep Convolutional Neural Network基于距离雷达感知和深度卷积神经网络的跌倒检测
A general sequential delay-Doppler estimation scheme for sub-Nyquist pulse-Doppler radar
SIGNAL PROCESSING
IF3.6

