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Sparsity-based signal processing for noise radar imaging

机译:基于稀疏性的噪声雷达成像信号处理

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摘要

Noise radar systems transmitting incoherent signal sequences have been proposed as powerful candidates for implementing compressively sampled detection and imaging systems. This paper presents an analysis of compressively sampled noise radar systems by formulating ultrawideband (UWB) compressive noise radar imaging as a problem of inverting ill-posed linear systems with circulant system matrices. The nonlinear nature of compressive signal recovery presents challenges in characterizing the performance of radar imaging systems. The suitability of noise waveforms for compressive radar is demonstrated using phase transition diagrams and transform point spread functions (TPSFs). The numerical simulations are designed to provide a compelling validation of the system. Nonidealities occurring in practical compressive noise radar systems are addressed by studying the properties of the transmit waveform. The results suggest that waveforms and system matrices that arise in practical noise radar systems are suitable for compressive signal recovery. Field imaging experiments on various target scenarios using a UWB millimeter wave noise radar validate our analytical results and the theoretical guarantees of compressive sensing.
机译:已经提出了发送不相干信号序列的噪声雷达系统,作为实现压缩采样检测和成像系统的有力候选者。本文通过将超宽带(UWB)压缩噪声雷达成像公式化为循环系统矩阵来变换不适定线性系统的问题,对压缩采样噪声雷达系统进行了分析。压缩信号恢复的非线性特性在表征雷达成像系统的性能方面提出了挑战。使用相变图和变换点扩展函数(TPSF)证明了压缩波形噪声波形的适用性。数值模拟旨在为系统提供令人信服的验证。通过研究发射波形的特性,可以解决实际压缩噪声雷达系统中出现的不理想情况。结果表明,在实际噪声雷达系统中出现的波形和系统矩阵适用于压缩信号恢复。使用UWB毫米波噪声雷达在各种目标场景下进行的现场成像实验验证了我们的分析结果以及压缩感测的理论保证。

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