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Detection and Tracking of Moving Targets Behind Cluttered Environments Using Compressive Sensing.

机译:使用压缩感测在杂乱环境中检测和跟踪运动目标。

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摘要

Detection and tracking of moving targets (target's motion, vibration, etc.) in cluttered environments have been receiving much attention in numerous applications, such as disaster search-and-rescue, law enforcement, urban warfare, etc. One of the popular techniques is the use of stepped frequency continuous wave radar due to its low cost and complexity. However, the stepped frequency radar suffers from long data acquisition time. This dissertation focuses on detection and tracking of moving targets and vibration rates of stationary targets behind cluttered medium such as wall using stepped frequency radar enhanced by compressive sensing. The application of compressive sensing enables the reconstruction of the target space using fewer random frequencies, which decreases the acquisition time. Hardware-accelerated parallelization on GPU is investigated for the Orthogonal Matching Pursuit reconstruction algorithm. For simulation purpose, two hybrid methods have been developed to calculate the scattered fields from the targets through the wall approaching the antenna system, and to convert the incoming fields into voltage signals at terminals of the receive antenna. The first method is developed based on the plane wave spectrum approach for calculating the scattered fields of targets behind the wall. The method uses Fast Multiple Method (FMM) to calculate scattered fields on a particular source plane, decomposes them into plane wave components, and propagates the plane wave spectrum through the wall by integrating wall transmission coefficients before constructing the fields on a desired observation plane. The second method allows one to calculate the complex output voltage at terminals of a receiving antenna which fully takes into account the antenna effects. This method adopts the concept of complex antenna factor in Electromagnetic Compatibility (EMC) community for its calculation.
机译:在混乱的环境中,对移动目标(目标的运动,振动等)的检测和跟踪已在众多应用中引起了广泛关注,例如灾难搜索和救援,执法,城市战争等。流行的技术之一是由于其低成本和复杂性,所以使用步进频率连续波雷达。但是,步进频率雷达的数据采集时间较长。本论文的重点是利用压缩感测增强的步进频率雷达,对诸如墙壁等杂乱介质后面的运动目标和静止目标的振动率进行检测和跟踪。压缩感测的应用使得能够使用更少的随机频率来重构目标空间,从而减少了采集时间。针对正交匹配追踪重构算法研究了GPU上的硬件加速并行化。出于仿真目的,已经开发了两种混合方法来计算从目标穿过接近天线系统的壁的目标散射场,并将入射场转换为接收天线端子处的电压信号。第一种方法是基于平面波谱方法开发的,用于计算墙后目标的散射场。该方法使用快速多重方法(FMM)来计算特定源平面上的散射场,将其分解为平面波分量,并在将场构建到所需观察平面之前,通过整合壁传输系数,将平面波谱传播通过壁。第二种方法允许人们计算接收天线端子处的复数输出电压,该输出电压充分考虑了天线效应。该方法采用电磁兼容性(EMC)社区中复杂天线因子的概念进行计算。

著录项

  • 作者

    Dang, Vinh Quang.;

  • 作者单位

    The Catholic University of America.;

  • 授予单位 The Catholic University of America.;
  • 学科 Electrical engineering.;Remote sensing.;Electromagnetics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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