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Signal Processing for Synthetic Aperture Sonar Image Enhancement

机译:合成孔径声纳图像增强的信号处理

摘要

This thesis contains a description of SAS processing algorithms, offering improvements in Fourier-based reconstruction, motion-compensation, and autofocus. Fourier-based image reconstruction is reviewed and improvements shown as the result of improved system modelling. A number of new algorithms based on the wavenumber algorithm for correcting second order effects are proposed. In addition, a new framework for describing multiple-receiver reconstruction in terms of the bistatic geometry is presented and is a useful aid to understanding. Motion-compensation techniques for allowing Fourier-based reconstruction in widebeam geometries suffering large-motion errors are discussed. A motion-compensation algorithm exploiting multiple receiver geometries is suggested and shown to provide substantial improvement in image quality. New motion compensation techniques for yaw correction using the wavenumber algorithm are discussed. A common framework for describing phase estimation is presented and techniques from a number of fields are reviewed within this framework. In addition a new proof is provided outlining the relationship between eigenvector-based autofocus phase estimation kernels and the phase-closure techniques used astronomical imaging. Micronavigation techniques are reviewed and extensions to the shear average single-receiver micronavigation technique result in a 3 - 4 fold performance improvement when operating on high-contrast images. The stripmap phase gradient autofocus (SPGA) algorithm is developed and extends spotlight SAR PGA to the wide-beam, wide-band stripmap geometries common in SAS imaging. SPGA supersedes traditional PGA-based stripmap autofocus algorithms such as mPGA and PCA - the relationships between SPGA and these algorithms is discussed. SPGA's operation is verified on simulated and field-collected data where it provides significant image improvement. SPGA with phase-curvature based estimation is shown and found to perform poorly compared with phase-gradient techniques. The operation of SPGA on data collected from Sydney Harbour is shown with SPGA able to improve resolution to near the diffraction-limit. Additional analysis of practical stripmap autofocus operation in presence of undersampling and space-invariant blurring is presented with significant comment regarding the difficulties inherent in autofocusing field-collected data. Field-collected data from trials in Sydney Harbour is presented along with associated autofocus results from a number of algorithms.
机译:本文包含对SAS处理算法的描述,对基于傅立叶的重建,运动补偿和自动对焦进行了改进。审查了基于傅立叶的图像重建,并显示了改进的系统建模结果。提出了多种基于波数算法的二阶效应校正算法。此外,提出了一种用于根据双站几何描述多接收器重构的新框架,该框架将有助于理解。讨论了运动补偿技术,该技术允许在遭受大运动误差的宽光束几何体中进行基于傅立叶的重建。提出了一种利用多种接收器几何形状的运动补偿算法,该算法可显着改善图像质量。讨论了使用波数算法进行偏航校正的新运动补偿技术。提出了描述相位估计的通用框架,并在此框架内回顾了来自多个领域的技术。此外,提供了新的证明,概述了基于特征向量的自动聚焦相位估计内核与用于天文成像的相位闭合技术之间的关系。回顾了微导航技术,对高对比度图像进行操作时,对剪切平均单接收机微导航技术的扩展使性能提高了3-4倍。开发了带状图相位梯度自动聚焦(SPGA)算法,并将聚光SAR PGA扩展到SAS成像中常见的宽光束,宽带带状图几何形状。 SPGA取代了传统的基于PGA的带状图自动对焦算法,例如mPGA和PCA-讨论了SPGA与这些算法之间的关系。 SPGA的操作在模拟和现场收集的数据上得到了验证,可以显着改善图像。显示了基于相位曲率估计的SPGA,发现与相位梯度技术相比,SPGA的性能较差。 SPGA对从悉尼港收集的数据进行的操作显示SPGA能够将分辨率提高到接近衍射极限。提出了在存在欠采样和空间不变模糊的情况下对实际带状图自动聚焦操作进行的其他分析,并对自动聚焦场收集的数据固有的困难进行了重要评论。呈现了悉尼港试验的现场收集数据以及许多算法的相关自动聚焦结果。

著录项

  • 作者

    Callow Hayden J;

  • 作者单位
  • 年度 2003
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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