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A compressive sensing imaging algorithm for millimeter-wave synthetic aperture imaging radiometer in near-field

机译:近场毫米波合成孔径成像辐射计的压缩传感成像算法

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In order to overcome the disadvantage of large data amount and receiver number in near-field passive millimeter-wave synthetic aperture imaging radiometer (PMSAIR), an imaging algorithm based on Compressive Sensing (CS) theory is proposed in this paper. Due to the fact that the brightness temperature distributions of the observed target have a sparse representation in some proper transform domain (such as the spatial finite-differences and wavelet coefficients), we use the CS approach to reconstruct the brightness temperature images from very few visibilities. Thus the amount of data and number of receivers can be further reduced than those traditional methods based on the Fourier transform. The reconstruction is performed by minimizing the Total-Variation norm of brightness temperature image. Finally, the numerical simulation of synthetic aperture imaging demonstrates that the proposed algorithm is an efficient, feasible imaging algorithm for near-field PMSAIR.
机译:为了克服近场无源毫米波合成孔径成像辐射计(PMSAIR)中数据量大,接收器数量大的缺点,提出了一种基于压缩感知(CS)理论的成像算法。由于被观察目标的亮度温度分布在某些适当的变换域(例如空间有限差分和小波系数)中具有稀疏表示,因此我们使用CS方法从极少的可见性中重建亮度温度图像。 。因此,与基于傅立叶变换的传统方法相比,可以进一步减少数据量和接收器数量。通过最小化亮度温度图像的总变化范数来执行重构。最后,合成孔径成像的数值模拟表明,该算法是一种有效,可行的近场PMSAIR成像算法。

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