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Signal Subspace Change Detection in Averaged Multi-Look SAR Imagery

机译:平均多视SAR图像中的信号子空间变化检测

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Modern Synthetic Aperture Radar (SAR) signal processing algorithms could retrieve accurate and subtle information regarding a scene that is being interrogated by an airborne radar system. An important reconnaissance problem that is being studied via the use of SAR systems and their sophisticated signal processing methods involves detecting changes in an imaged scene. In these problems, the user interrogates a scene with a SAR system at two different time points (e.g. different days); the resultant two SAR databases that we refer to as reference and test data, are used to determine where targets have entered or left the imaged scene between the two data acquisitions. For instance, X band SAR systems have the potential to become a potent tool to determine whether mines have been recently placed in an area. This paper describes an algorithm for detecting changes in averaged multi-look SAR imagery. Averaged multi-look SAR images are preferable to full aperture SAR reconstructions when the imaging algorithm is approximation based (e.g. polar format processing), or motion data are not accurate over a long full aperture. We study the application of a SAR detection method, known as Signal Subspace Processing, that is based on the principles of 2D adaptive filtering. We identify the change detection problem as a binary hypothesis-testing problem, and identify an error signal and its normalized version to determine whether ⅰ) there is no change in the imaged scene; or ⅱ) a target has been added to the imaged scene. A statistical analysis of the error signal is provided to show its properties and merits. Results are provided for data collected by an X band SAR platform and processed to form non-coherently look-averaged SAR images.
机译:现代的合成孔径雷达(SAR)信号处理算法可以检索有关机载雷达系统正在询问的场景的准确而微妙的信息。通过使用SAR系统及其复杂的信号处理方法,正在研究一个重要的侦察问题,该问题涉及检测成像场景中的变化。在这些问题中,用户在两个不同的时间点(例如,不同的日期)用SAR系统询问场景;我们将所得的两个SAR数据库称为参考和测试数据,用于确定目标在两次数据采集之间进入或离开成像场景的位置。例如,X波段SAR系统有可能成为确定最近是否在某个地区放置地雷的有效工具。本文介绍了一种用于检测平均多视SAR图像变化的算法。当成像算法基于近似值(例如极坐标格式处理),或者运动数据在长的全光圈范围内不准确时,平均多视SAR图像优于全光圈SAR重建。我们研究了基于2D自适应滤波原理的SAR检测方法(称为信号子空间处理)的应用。我们将变化检测问题识别为二进制假设检验问题,并确定错误信号及其规范化版本,以确定ⅰ)成像场景中是否没有变化;或ⅱ)目标已添加到成像场景。提供误差信号的统计分析以显示其特性和优点。提供了X波段SAR平台收集的数据结果,并对其进行处理以形成非相干外观平均的SAR图像。

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