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动态对比增强成像中灌注模型的参数估计:模型比较的统一框架。

Parameter estimation of perfusion models in dynamic contrast-enhanced imaging: a unified framework for model comparison.

机构信息

Laboratory of Mathematics in Interaction with Computer Science, CentraleSupélec, Chatenay Malabry; IBISC, University of Evry, Evry, France; Philips Research Medisys, France.

Philips Research Medisys, France.

出版信息

Med Image Anal. 2017 Jan;35:360-374. doi: 10.1016/j.media.2016.07.008. Epub 2016 Jul 28.

Abstract

Patients follow-up in oncology is generally performed through the acquisition of dynamic sequences of contrast-enhanced images. Estimating parameters of appropriate models of contrast intake diffusion through tissues should help characterizing the tumour physiology. However, several models have been developed and no consensus exists on their clinical use. In this paper, we propose a unified framework to analyse models of perfusion and estimate their parameters in order to obtain reliable and relevant parametric images. After defining the biological context and the general form of perfusion models, we propose a methodological framework for model assessment in the context of parameter estimation from dynamic imaging data: global sensitivity analysis, structural and practical identifiability analysis, parameter estimation and model comparison. Then, we apply our methodology to five of the most widely used compartment models (Tofts model, extended Tofts model, two-compartment model, tissue-homogeneity model and distributed-parameters model) and illustrate the results by analysing the behaviour of these models when applied to data acquired on five patients with abdominal tumours.

摘要

肿瘤患者的随访通常通过获取对比增强图像的动态序列来进行。通过估计组织中对比摄入扩散的适当模型的参数,应该有助于描述肿瘤的生理学特性。然而,已经开发了多种模型,它们在临床应用方面尚无共识。在本文中,我们提出了一个统一的框架来分析灌注模型,并估计它们的参数,以获得可靠和相关的参数图像。在定义了生物学背景和灌注模型的一般形式之后,我们提出了一种在从动态成像数据估计参数的背景下评估模型的方法框架:全局敏感性分析、结构和实际可识别性分析、参数估计和模型比较。然后,我们将我们的方法应用于最广泛使用的五个隔室模型(Tofts 模型、扩展 Tofts 模型、两隔室模型、组织均匀性模型和分布参数模型),并通过分析这些模型应用于五名腹部肿瘤患者采集的数据的行为来说明结果。

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