InSAR Kalman Filter phase unwrapping algorithm based on topographic factors

Guolin Liu, Huadong Hao, Fanlin Yang, Man Yan, Zhixing Du, Y. Dang
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引用次数: 1

Abstract

Phase unwrapping is the key step in Digital Elevation Model extraction and the measurement of surface deformation of Interferometric Synthetic Aperture Radar (InSAR). When in steep terrain or larger slope, the unwrapping result is bad and causes error transmission using the existing Kalman Filter phase unwrapping algorithm. Considering this situation, this paper presents an improved Kalman Filter phase unwrapping algorithm based on topographic factors for InSAR. It can be implemented through the introduction of the input control variable associated with topographic factors to the state-space model of Kalman Filter. Owing to the fact that the interference fringes directly reflect the change of the terrain and local fringe frequency is closely related with the local terrain slope, the local fringe frequency estimation can be used as the input control variable. In the local frequency estimation, using two-dimensional Chirp-Z transform, better estimate of the results may be quickly get. In this paper, using simulated data and real InSAR data to do the experiment, it can gain more reliable result compared with the conventional Kalman filter phase unwrapping algorithm. It is verified that the proposed algorithm can effectively deal with the situation of steep terrain and larger slope.
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基于地形因子的InSAR卡尔曼滤波相位展开算法
相位展开是干涉合成孔径雷达(InSAR)数字高程模型提取和表面变形测量的关键步骤。当地形陡峭或坡度较大时,现有的卡尔曼滤波相位展开算法的展开效果较差,会造成传输误差。针对这种情况,提出了一种改进的基于地形因素的卡尔曼滤波相位展开算法。它可以通过在卡尔曼滤波器的状态空间模型中引入与地形因素相关的输入控制变量来实现。由于干涉条纹直接反映地形的变化,且局部条纹频率与当地地形坡度密切相关,因此可以将局部条纹频率估计作为输入控制变量。在局部频率估计中,采用二维Chirp-Z变换,可以快速得到较好的估计结果。本文利用模拟数据和真实InSAR数据进行实验,与传统的卡尔曼滤波相位展开算法相比,得到了更可靠的结果。实验证明,该算法能够有效地处理地形陡峭、坡度较大的情况。
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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