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Frequency-Hopping Code Design for MIMO Radar Estimation Using Sparse Modeling

机译:基于稀疏建模的MIMO雷达跳频编码设计

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We consider the problem of multiple-target estimation using a colocated multiple-input multiple-output (MIMO) radar system. We employ sparse modeling to estimate the unknown target parameters (delay, Doppler) using a MIMO radar system that transmits frequency-hopping waveforms. We formulate the measurement model using a block sparse representation. We adaptively design the transmit waveform parameters (frequencies, amplitudes) to improve the estimation performance. Firstly, we derive analytical expressions for the correlations between the different blocks of columns of the sensing matrix. Using these expressions, we compute the block coherence measure of the dictionary. We use this measure to optimally design the sensing matrix by selecting the hopping frequencies for all the transmitters. Secondly, we adaptively design the amplitudes of the transmitted waveforms during each hopping interval to improve the estimation performance. To perform this amplitude design, we initialize it by transmitting constant-modulus waveforms of the selected frequencies to estimate the radar cross section (RCS) values of all the targets. Next, we make use of these RCS estimates to optimally select the waveform amplitudes. We demonstrate the performance improvement due to the optimal design of waveform parameters using numerical simulations. Further, we employ compressive sensing to conduct accurate estimation from far fewer samples than the Nyquist rate.
机译:我们考虑使用共置多输入多输出(MIMO)雷达系统进行多目标估计的问题。我们使用稀疏建模来估计未知目标参数(延迟,多普勒),方法是使用发射跳频波形的MIMO雷达系统。我们使用块稀疏表示来制定测量模型。我们自适应设计发射波形参数(频率,幅度)以提高估计性能。首先,我们导出感测矩阵的不同列块之间的相关性的解析表达式。使用这些表达式,我们可以计算字典的块相关性度量。我们通过选择所有发射器的跳频来使用该措施来优化设计感测矩阵。其次,我们在每个跳频间隔内自适应设计发送波形的幅度,以提高估计性能。为了执行这种幅度设计,我们通过传输选定频率的恒定模波形来初始化它,以估计所有目标的雷达横截面(RCS)值。接下来,我们利用这些RCS估计来最佳地选择波形幅度。我们通过使用数值模拟对波形参数进行了优化设计,证明了性能的提高。此外,我们采用压缩感测从比奈奎斯特速率少得多的样本中进行准确估计。

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