全变分正则化太赫兹频谱反褶积

Lizhen Deng, Hu Zhu, Guanmin Lu
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引用次数: 7

摘要

反褶积已成为提高光谱分辨率最常用的方法之一,其中盲反褶积作为一种典型方法得到了广泛的研究。然而,在实际应用中,盲反褶积方法中所使用的预定义点扩展函数(PSF)并不是完全已知的。一般情况下,从观测光谱中同时估计PSF,但当光谱数据受到强噪声污染时,估计PSF变得困难。本文提出了一种用于提高太赫兹频谱分辨率的反褶积方法。该方法构造了包含似然项、谱项总变分和PSF项L2范数的能量函数。PSF被建模为一个参数函数,与仪器响应特性的先验知识相结合。利用交替极小化方法,对能量泛函进行极小化,得到了PSF的谱和参数。实验结果证明了该方法用于太赫兹频谱的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
THz spectrum deconvolution with Total variation regularization
Deconvolution has become one of the most used methods for improving spectral resolution, and blind deconvolution as a typical method has been researched widely. However, the predefined point spread function (PSF) used in blind deconvolution method is not known exactly in practice. In general, the PSF is estimated simultaneously from the observed spectrum, but it becomes difficult when the spectroscopic data are polluted by strong noise. In this paper, we present a deconvolution method used to improve the resolution of THz spectrum. In the method, the energy function is constructed, which includes the likelihood term, Total variation of spectrum term and L2 norm of the PSF term. The PSF is modeled as a parametric function combination with the a priori knowledge about the characteristics of the instrumental response. The spectrum and the parameter of PSF are obtained by minimizing the energy functional using alternate minimization approach. Experimental results are shown to demonstrate the efficiency of the proposed method used for THz spectrum.
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