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本文引用的文献

1
On the role of modeling choices in estimation of cerebral aneurysm wall tension.在计算脑动脉瘤壁张力的模型选择中的作用。
J Biomech. 2012 Nov 15;45(16):2914-9. doi: 10.1016/j.jbiomech.2012.07.029. Epub 2012 Sep 25.
2
Automatic neck plane detection and 3D geometric characterization of aneurysmal sacs.自动颈平面检测及动脉瘤囊的三维几何特征描述。
Ann Biomed Eng. 2012 Oct;40(10):2188-211. doi: 10.1007/s10439-012-0577-5. Epub 2012 Apr 25.
3
Intracellular signaling pathways and size, shape, and rupture history of human intracranial aneurysms.颅内动脉瘤的细胞内信号通路与大小、形状和破裂史。
Neurosurgery. 2012 Jun;70(6):1565-72; discussion 1572-3. doi: 10.1227/NEU.0b013e31824c057e.
4
Characterizing heterogeneous properties of cerebral aneurysms with unknown stress-free geometry: a precursor to in vivo identification.表征无应力几何形状未知的脑动脉瘤的异质性特征:体内识别的前奏。
J Biomech Eng. 2011 May;133(5):051008. doi: 10.1115/1.4003872.
5
Identifying heterogeneous anisotropic properties in cerebral aneurysms: a pointwise approach.识别脑动脉瘤中的各向异性不均匀性质:一种逐点方法。
Biomech Model Mechanobiol. 2011 Apr;10(2):177-89. doi: 10.1007/s10237-010-0225-7. Epub 2010 May 21.
6
Feasibility of estimating regional mechanical properties of cerebral aneurysms in vivo.评估颅内动脉瘤体内局部力学性能的可行性。
Med Phys. 2010 Apr;37(4):1689-706. doi: 10.1118/1.3355933.
7
Patient-specific wall stress analysis in cerebral aneurysms using inverse shell model.基于反向壳模型的脑动脉瘤患者特定壁面应力分析。
Ann Biomed Eng. 2010 Feb;38(2):478-89. doi: 10.1007/s10439-009-9839-2. Epub 2009 Nov 21.
8
A framework for geometric analysis of vascular structures: application to cerebral aneurysms.血管结构几何分析框架:在脑动脉瘤中的应用。
IEEE Trans Med Imaging. 2009 Aug;28(8):1141-55. doi: 10.1109/TMI.2009.2021652. Epub 2009 May 12.
9
Influence of intracranial aneurysm-to-parent vessel size ratio on hemodynamics and implication for rupture: results from a virtual experimental study.颅内动脉瘤与载瘤血管大小比对血流动力学的影响及其与破裂的关系:一项虚拟实验研究结果
Neurosurgery. 2009 Apr;64(4):622-30; discussion 630-1. doi: 10.1227/01.NEU.0000341529.11231.69.
10
Determination of wall tension in cerebral artery aneurysms by numerical simulation.通过数值模拟确定脑动脉瘤壁张力
Stroke. 2008 Dec;39(12):3172-8. doi: 10.1161/STROKEAHA.107.503698. Epub 2008 Sep 25.

基于壳的颅内动脉瘤应力分析反演方法。

A shell-based inverse approach of stress analysis in intracranial aneurysms.

机构信息

Department of Mechanical and Industrial Engineering, The University of Iowa, Iowa City, IA 52242, USA.

出版信息

Ann Biomed Eng. 2013 Jul;41(7):1505-15. doi: 10.1007/s10439-013-0751-4. Epub 2013 Feb 8.

DOI:10.1007/s10439-013-0751-4
PMID:23392863
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3679309/
Abstract

Predicting pressure induced wall stress in intracranial aneurysms continues to be of interest for aneurysm safety assessment. In quasi-static analysis, there are two distinct approaches that one may take, the forward approach and the inverse approach. The inverse approach starts from a deformed configuration and thus is naturally suited to image-based, patient-specific analysis. Early studies by the authors' team suggested that the inverse approach, in the context of estimating the wall stress in cerebral aneurysms, depends weakly on the material description. In this article, we present a population study to further demonstrate the inverse method, in particular, the remarkable feature of insensitivity to material properties. Twenty-six aneurysm models derived from patient-specific images were employed in the study. Wall stresses were predicted in both the inverse and forward approaches using three material models. Results showed that, while forward computation yielded up to ~100% stress difference between some materials, the inverse solutions stayed close across materials. The inverse method, in addition to being methodologically accurate in dealing with pre-deformations, has the added convenience of insensitivity to uncertainties in wall tissue properties. New insight into the stress-geometry relation was also discussed.

摘要

预测颅内动脉瘤的压力诱导壁应力仍然是动脉瘤安全性评估的研究热点。在准静态分析中,有两种截然不同的方法,即正向法和逆向法。逆向法从变形构型开始,因此非常适合基于图像的、针对患者的分析。作者团队的早期研究表明,在估计脑动脉瘤壁应力的背景下,逆向法对材料描述的依赖性较弱。在本文中,我们进行了一项群体研究,以进一步证明逆向方法的显著特点,即对材料特性不敏感。研究中使用了 26 个源自患者特定图像的动脉瘤模型。使用三种材料模型在逆向和正向方法中预测壁应力。结果表明,虽然正向计算在某些材料之间产生了高达 100%的应力差异,但逆向解在不同材料之间保持接近。除了在处理预变形方面具有方法学上的准确性之外,逆向法还具有对壁组织特性不确定性不敏感的额外便利。还讨论了对应力-几何关系的新认识。