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Image formation from squint mode synthetic aperture radar data.

机译:由斜视模式合成孔径雷达数据形成的图像。

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摘要

The objective of this thesis is the investigation of image formation from squint mode, strip-map synthetic aperture radar (SAR) data, and the extension of the recently developed chirp scaling algorithm to accommodate problems in this type of imaging.;Several SAR processing algorithms are reviewed and analyzed to compare their processing errors at high squint and the type of operations they require. This includes the range-Doppler, squint imaging mode, polar format, wave equation and chirp scaling algorithms. In contrast to other algorithms, the chirp scaling algorithm does not require an interpolator in either the two-dimensional frequency domain or the range-Doppler domain, and it removes the range dependence of range cell migration correction (RCMC) efficiently by taking advantage of the properties of uncompressed linear FM pulses. Also, it achieves accurate processing for moderate squint angles by accommodating the azimuth-frequency dependence of secondary range compression (SRC).;Next, the properties of the squinted SAR signal are investigated to determine their effect on processing. A solution is presented for the yaw and pitch angles of the antenna which minimize the Doppler centroid variation with range and terrain height. The residual variation for a satellite platform is found to be negligible for an L-band SAR, while for C-band the variation was moderate and some accommodation in processing may be required. Then, the squinted beamwidth, which determines the azimuth bandwidth, is derived, and it is shown that choosing the yaw and pitch angles to minimize Doppler centroid variation results in an azimuth bandwidth that is independent of range. The resulting azimuth bandwidth and pulse repetition frequency (PRF), as a function of squint angle, is used to derive a fundamental limit on the squint angle such that a received echo fits between adjacent transmitted pulses. For spaceborne SAR and a 40 km slant range swath, the squint angle is limited to about 35 degrees for L-band, and 50 degrees for C-band.;The chirp scaling algorithm is then investigated by analysis and simulation, and extended for processing high squint SAR data. The side-effects of chirp scaling include a range dependent range-frequency shift which may result in a loss of range bandwidth if frequency components are allowed to be shifted outside the window of the range matched filter.;Finally, the original chirp scaling algorithm neglects the range dependence of SRC, and this affects the quality of processing for squint angles above 10 degrees for L-band and 20 degrees for C-band. To solve this problem, the concept of nonlinear FM chirp scaling is introduced, in which a nonlinear FM component is incorporated into the received range signal which interacts with chirp scaling to remove the range dependence of SRC. This allows accurate processing of strip map SAR data for squint angles up to the limitations imposed by the SAR imaging constraints. (Abstract shortened by UMI.)
机译:本文的目的是研究斜视模式下的图像形成,带状图合成孔径雷达(SAR)数据以及最近开发的线性调频缩放算法的扩展以适应此类成像问题。对它们进行了审查和分析,以比较它们在高斜视时的处理错误和所需的操作类型。这包括距离多普勒,斜视成像模式,极坐标格式,波动方程和线性调频缩放算法。与其他算法相比,线性调频缩放算法在二维频域或距离多普勒域中均不需要内插器,并且通过利用频域迁移校正(RCMC)的效率,消除了距离依赖性。未压缩线性FM脉冲的特性。并且,它通过适应次级范围压缩(SRC)的方位角频率依赖性,可以实现对中等斜视角度的精确处理。其次,研究斜视SAR信号的特性,以确定其对处理的影响。提出了一种针对天线的偏航角和俯仰角的解决方案,该解决方案使多普勒质心随距离和地形高度的变化最小。发现对于L波段SAR,卫星平台的残余变化可以忽略不计,而对于C波段,该变化是适度的,可能需要在处理中提供一些调整。然后,得出确定方位角带宽的斜射束宽度,结果表明,选择偏航角和俯仰角以最小化多普勒质心变化会导致方位角带宽与范围无关。所得的方位角带宽和脉冲重复频率(PRF)作为斜视角度的函数,可用于得出斜视角度的基本限制,以使接收的回波适合相邻的发射脉冲之间。对于星载SAR和40 km倾斜测距带,斜视角度限制为L波段约35度,C波段约50度。;然后通过分析和仿真研究chirp缩放算法,并将其扩展以进行处理高斜视SAR数据。线性调频定标的副作用包括与范围相关的范围-频移,如果允许频率分量移至范围匹配滤波器的窗口之外,则可能会导致范围带宽的损失。最后,原始线性调频定标算法忽略了SRC的范围依赖性,这会影响L波段10度以上和C波段20度以上的斜视角度的处理质量。为了解决这个问题,引入了非线性调频线性调频标度的概念,其中非线性调频成分被合并到接收的范围信号中,该信号与线性调频标度相互作用以消除SRC的范围依赖性。这允许对斜视角度的带状图SAR数据进行精确处理,直至达到SAR成像约束所施加的限制。 (摘要由UMI缩短。)

著录项

  • 作者

    Davidson, Gordon Wayne.;

  • 作者单位

    The University of British Columbia (Canada).;

  • 授予单位 The University of British Columbia (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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