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Least square based method for obtaining one-particle spectral functions from temperature Green functions

机译:基于最小二乘法从温度格林函数获得单粒子光谱函数的方法

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摘要

A least square based fitting scheme is proposed to extract an optimal one-particle spectral function from any one-particle temperature Green function. It uses the existing non-negative least square (NNLS) fit algorithm to do the fit, and Tikhonov regularization to help with possible numerical singular behaviors. By flexibly adding delta peaks to represent very sharp features of the target spectrum, this scheme guarantees a global minimization of the fitted residue. The performance of this scheme is manifested with diverse physical examples. The proposed scheme is shown to be comparable in performance to the standard Padé analytic continuation scheme.
机译:提出了基于最小二乘的拟合方案,以从任何一个单粒子温度格林函数中提取最佳的单粒子光谱函数。它使用现有的非负最小二乘(NNLS)拟合算法进行拟合,并使用Tikhonov正则化来帮助解决可能的数值奇异行为。通过灵活地添加增量峰来代表目标光谱的非常鲜明的特征,该方案可确保拟合残基的总体最小化。该方案的性能通过各种物理示例得以体现。所提出的方案在性能上可与标准Padé解析延续方案相媲美。

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