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A synthetic aperture radar-based focusing algorithm for B-scan ground penetrating radar imagery

✍ Scribed by Enes Yigit; Sevket Demirci; Caner Ozdemir; Adnan Kavak


Publisher
John Wiley and Sons
Year
2007
Tongue
English
Weight
510 KB
Volume
49
Category
Article
ISSN
0895-2477

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✦ Synopsis


Abstract

In the classical B‐Scan ground penetrating radar (GPR) imagery, unprocessed image domain data exhibit undesired hyperbolic effects and therefore have low resolution features. To solve this problem, various focusing or migration techniques have been developed and applied to focus the scattered energy at their true spatial locations in the object space. In this article, we present a synthetic aperture radar (SAR) based focusing algorithm to obtain well‐localized two‐dimensional B‐scan GPR images of various buried objects. The concept and the formulation of our frequency domain based imaging algorithm are presented. The performance of the algorithm is tested with both the simulated and measurement data. The simulation data are generated by a physical optics shooting and bouncing ray (PO‐SBR) technique code; whereas the C‐band measured data are collected via an experimental set‐up for different ground environments. Almost perfect focusing performance is achieved for the simulated GPR images. Similarly, well‐focused GPR images with high lateral resolutions are also obtained for the measurement data from metallic and non‐metallic buried objects. © 2007 Wiley Periodicals, Inc. Microwave Opt Technol Lett 49: 2534–2540, 2007; Published online in Wiley InterScience (www.interscience.wiley.com). DOI 10.1002/mop.22724


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## Abstract A formulation for ground‐penetrating radar (GPR) imaging using the synthetic‐aperture concept is introduced. We show that it is possible to form a 3D image by inverse Fourier transforming the multifrequency, multispatial scattered field. The proposed algorithm for GPR imaging is tested