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用于直接毫米波全息成像的压缩感知

Compressive sensing for direct millimeter-wave holographic imaging.

作者信息

Qiao Lingbo, Wang Yingxin, Shen Zongjun, Zhao Ziran, Chen Zhiqiang

出版信息

Appl Opt. 2015 Apr 10;54(11):3280-9. doi: 10.1364/AO.54.003280.

Abstract

Direct millimeter-wave (MMW) holographic imaging, which provides both the amplitude and phase information by using the heterodyne mixing technique, is considered a powerful tool for personnel security surveillance. However, MWW imaging systems usually suffer from the problem of high cost or relatively long data acquisition periods for array or single-pixel systems. In this paper, compressive sensing (CS), which aims at sparse sampling, is extended to direct MMW holographic imaging for reducing the number of antenna units or the data acquisition time. First, following the scalar diffraction theory, an exact derivation of the direct MMW holographic reconstruction is presented. Then, CS reconstruction strategies for complex-valued MMW images are introduced based on the derived reconstruction formula. To pursue the applicability for near-field MMW imaging and more complicated imaging targets, three sparsity bases, including total variance, wavelet, and curvelet, are evaluated for the CS reconstruction of MMW images. We also discuss different sampling patterns for single-pixel, linear array and two-dimensional array MMW imaging systems. Both simulations and experiments demonstrate the feasibility of recovering MMW images from measurements at 1/2 or even 1/4 of the Nyquist rate.

摘要

直接毫米波(MMW)全息成像通过外差混频技术提供幅度和相位信息,被认为是人员安全监控的有力工具。然而,毫米波成像系统通常存在成本高或阵列或单像素系统数据采集周期相对较长的问题。本文将旨在稀疏采样的压缩感知(CS)扩展到直接毫米波全息成像,以减少天线单元数量或数据采集时间。首先,遵循标量衍射理论,给出了直接毫米波全息重建的精确推导。然后,基于推导的重建公式,介绍了复值毫米波图像的压缩感知重建策略。为了追求对近场毫米波成像和更复杂成像目标的适用性,评估了包括总变差、小波和曲波在内的三种稀疏基用于毫米波图像的压缩感知重建。我们还讨论了单像素、线性阵列和二维阵列毫米波成像系统的不同采样模式。仿真和实验均证明了以奈奎斯特速率的1/2甚至1/4从测量中恢复毫米波图像的可行性。

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