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Through-Wall UWB Radar Based on Sparse Deconvolution with Arctangent Regularization for Locating Human Subjects

机译:基于稀疏碎片造成的通过壁壁UWB雷达以便定位人类受试者

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摘要

A common problem in through-wall radar is reflected signals much attenuated by wall and environmental noise. The reflected signal is a convolution product of a wavelet and an unknown object time series. This paper aims to extract the object time series from a noisy receiving signal of through-wall ultrawideband (UWB) radar by sparse deconvolution based on arctangent regularization. Arctangent regularization is one of the suitably nonconvex regularizations that can provide a reliable solution and more accuracy, compared with convex regularizations. An iterative technique for this deconvolution problem is derived by the majorization–minimization (MM) approach so that the problem can be solved efficiently. In the various experiments, sparse deconvolution with the arctangent regularization can identify human positions from the noisy received signals of through- wall UWB radar. Although the proposed method is an odd concept, the interest of this paper is in applying sparse deconvolution, based on arctangent regularization with an S-band UWB radar, to provide a more accurate detection of a human position behind a concrete wall.
机译:贯通壁雷达中的常见问题被墙壁和环境噪声衰减的反射信号。反射信号是小波的卷积乘积和未知的物体时间序列。本文旨在通过基于壁故用正则化的稀疏解压输出从通壁超空白带(UWB)雷达的噪声接收信号的对象时间序列。与凸正规化相比,Atctangent正规化是可以提供可靠的解决方案和更准确的合适的非正规规则之一。这种解构问题的迭代技术是由多种化最小化(MM)方法导出的,因此可以有效地解决问题。在各种实验中,具有壁故用正则化的稀疏碎屑可以从墙壁UWB雷达的嘈杂接收信号中识别人的位置。虽然所提出的方法是奇怪的概念,但本文的兴趣在于基于具有S波段UWB雷达的畸形规则化的稀疏解卷积,以便在混凝土墙壁后面提供更准确地检测人体位置。

著录项

  • 期刊名称 Sensors (Basel Switzerland)
  • 作者单位
  • 年(卷),期 2021(21),7
  • 年度 2021
  • 页码 2488
  • 总页数 17
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:稀疏的去卷积;多种化 - 最小化(mm)算法;方形规则化;穿过墙雷达;UWB雷达;

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