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ℓ_p-Based complex approximate message passing with application to sparse stepped frequency radar

机译:基于ℓ_p的复杂近似信息传递及其在稀疏步进频率雷达中的应用

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摘要

Compressed sensing exploits the sparsity of the signal to reduce the sampling rate while keeping the resolution fixed, and has been widely used. In this paper we propose a new algorithm called adaptive ℓ_p-CAMP and show its application in the sparse stepped frequency radar signal processing. Our algorithm is inspired by the complex approximate message passing algorithm (CAMP) that solves complex-valued LASSO. The following properties of the proposed algorithm make it superior to existing algorithms: (1) All the parameters of the algorithm are tuned dynamically and optimally. The algorithm does not require any information about the signal and is still capable of tuning the parameters as well as an oracle that has all the signal information. (2) Adaptive ℓ_p-CAMP is designed to solve the complex-valued (ℓ_p-regularized least squares for 0 approx≤p approx≤ 1. Hence, it can outperform CAMP. The performance of the proposed algorithm is verified by simulations and the data collected by a real radar system.
机译:压缩感测利用信号的稀疏性来降低采样率,同时保持分辨率固定,并且已被广泛使用。在本文中,我们提出了一种称为自适应C_p-CAMP的新算法,并展示了其在稀疏步进频率雷达信号处理中的应用。我们的算法的灵感来自于解决近似值LASSO的复杂近似消息传递算法(CAMP)。所提出算法的以下特性使其优于现有算法:(1)动态优化地优化算法的所有参数。该算法不需要有关信号的任何信息,并且仍然能够调整参数以及具有所有信号信息的预言机。 (2)自适应ℓ_p-CAMP设计用于求解复数值(ℓ_p-正则化最小二乘为0近似≤p近似≤1,因此,它的性能优于CAMP。通过仿真和数据验证了该算法的性能。由真实的雷达系统收集。

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