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对数变换有利于微波断层成像中的参数估计。

Log transformation benefits parameter estimation in microwave tomographic imaging.

作者信息

Meaney Paul M, Fang Qianqian, Rubaek Tonny, Demidenko Eugene, Paulsen Keith D

机构信息

Thayer School of Engineering, Dartmouth College, Hanover New Hampshire 03755, USA.

出版信息

Med Phys. 2007 Jun;34(6):2014-23. doi: 10.1118/1.2737264.

Abstract

Microwave tomographic imaging falls under a broad category of nonlinear parameter estimation methods when a Gauss-Newton iterative reconstruction technique is used. A fundamental requirement in using these approaches is evaluating the appropriateness of the regression model. While there have been numerous investigations of regularization techniques to improve overall image quality, few, if any, studies have explored the underlying statistical properties of the model itself. The ordinary least squares (OLS) approach is used most often, but there are other options such as the weighted least squares (WLS), maximum likelihood (ML), and maximum a posteriori (MAP) that may be more appropriate. In addition, a number of variance stabilizing transformations can be applied to make the inversion intrinsically more linear. In this paper, a statistical analysis is performed of the properties of the residual errors from the reconstructed images utilizing actual measured data and it is demonstrated that the OLS algorithm with a log transformation (OLSlog) is clearly advantageous relative to the more commonly used OLS approach by itself. In addition, several high contrast imaging experiments are performed, which demonstrate that different subsets of data are emphasized in each method and may contribute to the overall image quality differences.

摘要

当使用高斯 - 牛顿迭代重建技术时,微波断层成像属于一类广泛的非线性参数估计方法。使用这些方法的一个基本要求是评估回归模型的适用性。虽然已经有许多关于正则化技术的研究以提高整体图像质量,但几乎没有研究探索过模型本身潜在的统计特性。最常使用的是普通最小二乘法(OLS),但也有其他选择,如加权最小二乘法(WLS)、最大似然法(ML)和最大后验法(MAP),它们可能更合适。此外,可以应用一些方差稳定变换以使反演本质上更具线性。在本文中,利用实际测量数据对重建图像的残差特性进行了统计分析,结果表明,采用对数变换的OLS算法(OLSlog)相对于单独使用的更常用的OLS方法明显具有优势。此外,还进行了几个高对比度成像实验,结果表明每种方法强调的数据子集不同,这可能导致整体图像质量存在差异。

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