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High-resolution imaging methods in array signal processing

机译:阵列信号处理中的高分辨率成像方法

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摘要

The purpose of this study is to develop methods in array signal processing which achieve accurate signal reconstruction from limited observations resulting in high-resolution imaging. The focus is on underwater acoustic applications and sonar signal processing both in active (transmit and receive) and passive (only receive) mode. The study addresses the limitations of existing methods and shows that, in many cases, the proposed methods overcome these limitations and outperform traditional methods for acoustic imaging. The project comprises two parts; The first part deals with computational methods in active sonar signal processing for detection and imaging of submerged oil contamination in sea water from a deep-water oil leak. The submerged oil _eld is modeled as a uid medium exhibiting spatial perturbations in the acoustic parameters from their mean ambient values which cause weak scattering of the incident acoustic energy. A highfrequency active sonar is selected to insonify the medium and receive the backscattered waves. High-frequency acoustic methods can both overcome the optical opacity of water (unlike methods based on electromagnetic waves) and resolve the small-scale structure of the submerged oil field (unlike low-frequency acoustic methods). The study shows that high-frequency acoustic methods are suitable not only for large-scale localization of the oil contamination in the water column but also for statistical characterization of the submerged oil field through inference of the spatial covariance of its acoustic parameters. The second part of the project investigates methods that exploit sparsity in order to achieve super-resolution in sound source localization with passive sonars. Sound source localization with sensor arrays involves the estimation of the direction-of-arrival (DOA) of the associated wavefronts from a limited number of observations. Usually, there are only a few sources generating the acoustic wavefield such that DOA estimation is essentially a sparse signal reconstruction problem. Conventional methods for DOA estimation (i.e., beamforming) suffer from resolution limitations related to the physical size and the geometry of the array. DOA estimation methods that are developed up-to-date in order to overcome the resolution limitations of conventional methods involve the estimation or the eigendecomposition of the data cross-spectral matrix. The cross-spectral methods require many snapshots (i.e., observation windows of the recorded wavefield) hence are suitable only for stationary incoherent sources. In this study, the DOA estimation problem is formulated both for single and multiple snapshots in the compressive sensing framework (CS), which achieves sparsity, thus improved resolution, and can be solved efficiently with convex optimization. It is shown that CS has superior performance compared to traditional DOA estimation methods especially under challenging scenarios such as coherent arrivals, single-snapshot data and random array configurations. The high-resolution performance and the robustness of CS in DOA estimation are validated with experimental array data from ocean acoustic measurements.
机译:这项研究的目的是开发阵列信号处理中的方法,这些方法可以从有限的观察结果中获得准确的信号重建,从而实现高分辨率成像。重点是主动(发送和接收)和被动(仅接收)模式下的水下声学应用和声纳信号处理。这项研究解决了现有方法的局限性,并表明,在许多情况下,所提出的方法克服了这些局限性,并优于传统的声学成像方法。该项目包括两个部分;第一部分介绍了有源声纳信号处理中的计算方法,用于检测和成像深水漏油引起的海水中的淹没油污染。将淹没油场建模为一种流体介质,该流体介质会根据平均环境值在声学参数中显示出空间扰动,从而引起入射声能的弱散射。选择高频有源声纳以使介质声波并接收反向散射波。高频声学方法既可以克服水的光学不透明性(不同于基于电磁波的方法),又可以解决水下油田的小规模结构(不同于低频声学方法)。研究表明,高频声学方法不仅适用于水柱中油污的大规模定位,而且还可以通过推断其声学参数的空间协方差来统计淹没油田的统计特征。该项目的第二部分研究了利用稀疏性的方法,以便在使用被动声纳的声源定位中实现超分辨率。传感器阵列对声源的定位涉及根据有限数量的观测值估计相关波阵面的到达方向(DOA)。通常,只有少数几个源生成声波场,因此DOA估计本质上是稀疏信号重建问题。用于DOA估计的常规方法(即,波束成形)遭受与阵列的物理尺寸和几何形状有关的分辨率限制。为了克服常规方法的分辨率限制而最新开发的DOA估计方法涉及数据互谱矩阵的估计或本征分解。互谱方法需要许多快照(即记录的波场的观察窗口),因此仅适用于固定的非相干源。在这项研究中,在压缩感测框架(CS)中针对单个快照和多个快照制定了DOA估计问题,该问题实现了稀疏性,从而提高了分辨率,并且可以通过凸优化有效地解决。结果表明,与传统的DOA估计方法相比,CS具有更好的性能,特别是在相干到达,单快照数据和随机阵列配置等挑战性场景下。利用来自海洋声学测量的实验阵列数据验证了DOA估计中CS的高分辨率性能和鲁棒性。

著录项

  • 作者

    Xenaki Angeliki; Knudsen Kim;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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