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Cerebral perfusion mapping using a robust and efficient method for deconvolution analysis of dynamic contrast-enhanced images.

机译:使用强大而有效的方法对动态对比度增强图像进行去卷积分析的脑灌注图。

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摘要

Dynamic contrast-enhanced (DCE) imaging using MRI or CT is emerging as a promising tool for diagnostic imaging of cerebral disorders and the monitoring of tumor response to treatment. In this study, we present a robust and efficient deconvolution method based on a linearized model of the impulse residue function, which allows for the mapping of functional cerebral parameters such as cerebral blood flow, volume, mean transit time, and permeability. Monte Carlo simulation studies were performed to study the accuracy and stability of the proposed method, before applying it to clinical study cases of patients with cerebral tumors imaged using DCE CT. Functional parameter maps generated using the proposed method revealed the locations of the cerebral tumors and were found to be of sufficiently good clarity for marked regional differences in tissue vascularity and permeability to be assessed. In particular, tumor visualization and delineation were found to be better on the parameter maps that were indicativeof the breakdown of the blood-brain barrier.
机译:使用MRI或CT的动态对比增强(DCE)成像正在成为诊断脑部疾病和监测肿瘤对治疗反应的有前途的工具。在这项研究中,我们基于脉冲残差函数的线性化模型提出了一种强大而有效的去卷积方法,该方法可以映射功能性脑参数,例如脑血流量,体积,平均通过时间和通透性。在将其应用于DCE CT成像的脑肿瘤患者的临床研究案例之前,进行了蒙特卡罗模拟研究,以研究该方法的准确性和稳定性。使用所提出的方法生成的功能参数图揭示了脑肿瘤的位置,并被发现具有足够好的清晰度,可以评估组织血管和通透性的明显区域差异。特别地,在指示血脑屏障破坏的参数图上发现肿瘤的可视化和描绘更好。

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