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Levenberg-Marquardt曲线拟合算法在动态对比增强磁共振成像(DCE-MRI)数据药代动力学建模中的应用。

The use of the Levenberg-Marquardt curve-fitting algorithm in pharmacokinetic modelling of DCE-MRI data.

作者信息

Ahearn T S, Staff R T, Redpath T W, Semple S I K

机构信息

Department of Bio-Medical Physics, University of Aberdeen and Grampian University Hospitals NHS Trust, Foresterhill, Aberdeen AB25 2ZD, UK.

出版信息

Phys Med Biol. 2005 May 7;50(9):N85-92. doi: 10.1088/0031-9155/50/9/N02. Epub 2005 Apr 13.

Abstract

The use of curve-fitting and compartmental modelling for calculating physiological parameters from measured data has increased in popularity in recent years. Finding the 'best fit' of a model to data involves the minimization of a merit function. An example of a merit function is the sum of the squares of the differences between the data points and the model estimated points. This is facilitated by curve-fitting algorithms. Two curve-fitting methods, Levenberg-Marquardt and MINPACK-1, are investigated with respect to the search start points that they require and the accuracy of the returned fits. We have simulated one million dynamic contrast enhanced MRI curves using a range of parameters and investigated the use of single and multiple search starting points. We found that both algorithms, when used with a single starting point, return unreliable fits. When multiple start points are used, we found that both algorithms returned reliable parameters. However the MINPACK-1 method generally outperformed the Levenberg-Marquardt method. We conclude that the use of a single starting point when fitting compartmental modelling data such as this produces unsafe results and we recommend the use of multiple start points in order to find the global minima.

摘要

近年来,使用曲线拟合和房室模型从测量数据中计算生理参数的方法越来越受欢迎。找到模型与数据的“最佳拟合”涉及到一个优点函数的最小化。优点函数的一个例子是数据点与模型估计点之间差异的平方和。这通过曲线拟合算法来实现。针对所需的搜索起始点和返回拟合的准确性,研究了两种曲线拟合方法,即列文伯格-马夸特法和MINPACK-1法。我们使用一系列参数模拟了100万条动态对比增强磁共振成像曲线,并研究了单搜索起始点和多搜索起始点的使用情况。我们发现,当两种算法都使用单个起始点时,返回的拟合结果不可靠。当使用多个起始点时,我们发现两种算法都返回了可靠的参数。然而,MINPACK-1方法通常优于列文伯格-马夸特法。我们得出结论,在拟合此类房室模型数据时使用单个起始点会产生不安全的结果,我们建议使用多个起始点以找到全局最小值。

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