Abstract

The ground-based arc-scanning synthetic aperture radar (ArcSAR) is capable of 360° scanning of the surroundings with the antenna fixed on a rotating arm. ArcSAR has much wider field of view when compared with conventional ground-based synthetic aperture radar (GBSAR) scanning on a linear rail. It has already been used in deformation monitoring applications. This paper mainly focuses on the accurate and fast imaging algorithms for ArcSAR. The curvature track makes the image focusing challenging and, in the classical frequency domain, fast imaging algorithms that are designed for linear rail SAR cannot be readily applied. This paper proposed an efficient frequency domain imaging algorithm for ArcSAR. The proposed algorithm takes advantage of the angular shift-invariant property of the ArcSAR signal, and it deduces the accurate matched filter in the angular-frequency domain, so panoramic images in polar coordinates with wide swath can be obtained at one time without segmenting strategy. When compared with existing ArcSAR frequency domain algorithms, the proposed algorithm is more accurate and efficient, because it has neither far range nor narrow beam antenna restrictions. The proposed method is validated by both simulation and real data. The results show that our algorithm brings the quality of image close to the time domain back-projection (BP) algorithm at a processing efficiency about two orders of magnitude better, and it has better image quality than the existing frequency domain Lee’s algorithm at a comparable processing speed.

Highlights

  • Synthetic Aperture Radar (SAR) is capable of high-resolution imaging in all-day and all-weather conditions

  • We mainly focus on the imaging algorithm for arc-scanning synthetic aperture radar (ArcSAR)

  • The advantages of the proposed algorithm over the other algorithms are validated by both simulation and real data

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Summary

Introduction

Synthetic Aperture Radar (SAR) is capable of high-resolution imaging in all-day and all-weather conditions. SAR images contain phase information, which can be used to extract deformation information by differential interferometry It is a kind of non-contact and sub-wavelength high-precision deformation extraction technique. Is a type of SAR system that can continuously monitor the deformation of an area for a long period of time in real time [1,2,3,4,5]. It has been widely used in the deformation monitoring of dams, bridges, buildings, and slopes. This kind of technique, which is based on sensor scanning and imaging, is widely employed for different applications, such as medical imaging and indoor mapping [6,7]

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