Experimental study on super-resolution 3-D imaging algorithm based on extended capon with reference signal optimization for UWB radars

S. Kidera, T. Sakamoto, Toru Sato
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引用次数: 1

Abstract

Near field radar employing UWB (Ultra Wideband) signals with its high range resolution is promising as various sensing applications. It enables robotic or security sensors that can identify a human body in invisible situations. As one of the most promising radar algorithms, the RPM (Range Points Migration) is proposed. This offers an accurate 3-D (3-dimensional) surface extraction for various target shape. However, in the case of a complicated target surface whose variation scale is less than wavelength, it still suffers from image distortion caused by multiple interference signals with different waveforms. As a substantial solution, this paper proposes a novel range extraction algorithm by extending the Capon, known as frequency domain interferometry (FDI). This algorithm combines reference signal optimization with the original Capon to enhance the accuracy and resolution for an observed range into which a deformed waveform model is introduced. The results obtained from numerical simulations and an experiment prove that super-resolution UWB radar imaging is achieved by the proposed method, even for an extremely complex-surface target, including edges.
基于扩展capon和参考信号优化的超宽带雷达超分辨三维成像算法实验研究
采用超宽带(UWB)信号的近场雷达以其高距离分辨率在各种传感应用中具有广阔的应用前景。它使机器人或安全传感器能够在不可见的情况下识别人体。距离点迁移(RPM)是一种很有前途的雷达算法。这为各种形状的目标提供了精确的3-D (3-dimensional)表面提取。然而,对于变化尺度小于波长的复杂目标表面,由于多种不同波形的干扰信号,仍然会造成图像畸变。作为一种实质性的解决方案,本文提出了一种新的距离提取算法,即频域干涉法(FDI)。该算法将参考信号优化与原始Capon相结合,提高了在引入变形波形模型的观测范围内的精度和分辨率。数值模拟和实验结果表明,该方法可以实现超分辨超宽带雷达成像,甚至可以实现包括边缘在内的极其复杂的表面目标。
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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