Parked vehicle detection and status evaluation on X-band spotlight-mode SAR interferometry

T. Hoshino, K. Suwa, Noboru Oishi, T. Wakayama, T. Hara
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引用次数: 0

Abstract

For urban area monitoring, detection and classification of small targets with synthetic aperture radar imagery are one of the useful solutions. The conventional method has the problem that when a target on both master and slave images at the same position has the same radar cross section, it does not classify the target as either a slightly moved reparked vehicle or as a different vehicle. To overcome this problem, we propose a Fourier-transform-based simple phase compensation method for both accurate coherence estimation and classification of the reparked vehicle's status. The proposed method obtains the maximum value of the frequency basis, and also determines the threshold, which is based on effective sample number, with a constant false alarm rate. This number is determined by the peak signal-to-noise ratio in estimation window, and are used on the preprocessed probability density function for each sample number. Finally, the proposed method classifies a target as either a slightly moved vehicle or as a different vehicle by using both the proposed coherence and threshold detection, which enables it to determine the target status. Experimental results with the COSMO-SkyMed X-band spotlight SAR images demonstrate the effectiveness of the proposed method.
基于x波段射光模式SAR干涉测量的停放车辆检测与状态评价
在城市监测中,利用合成孔径雷达图像对小目标进行检测和分类是有效的解决方案之一。传统方法存在这样的问题,即当同一位置的主从图像上的目标具有相同的雷达横截面时,它不能将目标分类为稍微移动的再停放车辆或不同的车辆。为了解决这一问题,本文提出了一种基于傅里叶变换的简单相位补偿方法,用于准确估计和分类停放车辆的状态。该方法在虚警率恒定的情况下,得到频率基的最大值,并根据有效样本数确定阈值。该数由估计窗口中的峰值信噪比决定,并用于每个样本数的预处理概率密度函数。最后,该方法利用所提出的相干性和阈值检测,将目标分类为轻微移动的车辆或不同的车辆,从而确定目标的状态。COSMO-SkyMed x波段射光SAR图像的实验结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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