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磁共振成像协议的优化:一种统计决策分析方法。

Optimization of MR protocols: a statistical decision analysis approach.

作者信息

McVeigh E R, Bronskill M J, Henkelman R M

机构信息

Department of Medical Biophysics, University of Toronto, Ontario, Canada.

出版信息

Magn Reson Med. 1988 Mar;6(3):314-33. doi: 10.1002/mrm.1910060310.

Abstract

A new method of optimizing MRI data acquisition protocols is presented. Tissues are modeled with probability density functions (PDFs) of tissue parameter values (such as T1, T2). The imaging data acquisition process is modeled as a mapping from a tissue parameter space to a signal strength space. Tissue parameter PDFs are mapped to signal strength PDFs for each tissue in a clinical problem. The efficacy of an MRI protocol is evaluated using the methods of statistical decision analysis applied to the signal strength PDFs, including the propagation of noise. This procedure evaluates the ability to discriminate different tissues based on the signal strengths produced with the protocol. The model can incorporate an arbitrary number of tissues, parameters, and pulse sequences in the protocol. The multivariate nature of MRI and the observed broad distribution of tissue parameter values makes this model more appropriate for optimizing data acquisition protocols than methods which maximize the signal-difference-to-noise ratio between discrete values of the tissue parameters. It is shown that these two methods may calculate different optimal protocols. The method can be used to optimize data acquisition for quantitative computer-based tissue classification, as well as imaging. Data acquisition and image processing philosophies are discussed in light of the method.

摘要

本文提出了一种优化MRI数据采集协议的新方法。组织用组织参数值(如T1、T2)的概率密度函数(PDF)进行建模。成像数据采集过程被建模为从组织参数空间到信号强度空间的映射。在临床问题中,将组织参数PDF映射到每个组织的信号强度PDF。使用应用于信号强度PDF的统计决策分析方法(包括噪声传播)来评估MRI协议的有效性。该过程评估基于协议产生的信号强度来区分不同组织的能力。该模型可以在协议中纳入任意数量的组织、参数和脉冲序列。MRI的多变量性质以及观察到的组织参数值的广泛分布使得该模型比那些最大化组织参数离散值之间的信号差与噪声比的方法更适合于优化数据采集协议。结果表明,这两种方法可能会计算出不同的最优协议。该方法可用于优化基于计算机的定量组织分类以及成像的数据采集。根据该方法讨论了数据采集和图像处理理念。

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