CFD for Evaluation and Treatment Planning of Aneurysms: Review of Proposed Clinical Uses and Their Challenges
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[1] David A. Steinman,et al. A Framework for Geometric Analysis of Vascular Structures: Application to Cerebral Aneurysms , 2009, IEEE Transactions on Medical Imaging.
[2] S. Peerless,et al. Deliberate basilar or vertebral artery occlusion in the treatment of intracranial aneurysms. Immediate results and long-term outcome in 201 patients. , 1993, Journal of neurosurgery.
[3] Gábor Janiga,et al. Experimental validation of numerical simulations on a cerebral aneurysm phantom model. , 2012, Interventional medicine & applied science.
[4] M Negoro,et al. Computational Fluid Dynamics for Brain Circulation and Aneurysm with Therapeutic Devices , 2004, Interventional neuroradiology : journal of peritherapeutic neuroradiology, surgical procedures and related neurosciences.
[5] M Umezu,et al. Risk Analysis of Unruptured Aneurysms Using Computational Fluid Dynamics Technology: Preliminary Results , 2011, American Journal of Neuroradiology.
[6] Juan R. Cebral,et al. Suggested Connections Between Risk Factors of Intracranial Aneurysms: A Review , 2012, Annals of Biomedical Engineering.
[7] R. Rosenwasser,et al. Endovascular Management of Intracranial Aneurysms: Current Experience and Future Advances , 2006, Neurosurgery.
[8] J. Mocco,et al. Hemodynamic–Morphologic Discriminants for Intracranial Aneurysm Rupture , 2011, Stroke.
[9] Alejandro F. Frangi,et al. CFD Analysis Incorporating the Influence of Wall Motion: Application to Intracranial Aneurysms , 2006, MICCAI.
[10] Fujimaro Ishida,et al. Using computational fluid dynamics analysis to characterize local hemodynamic features of middle cerebral artery aneurysm rupture points. , 2015, World neurosurgery.
[11] Kristian Valen-Sendstad,et al. A study of wall shear stress in 12 aneurysms with respect to different viscosity models and flow conditions. , 2013, Journal of biomechanics.
[12] T. Terada,et al. Changes in wall shear stress magnitude after aneurysm rupture , 2013, Acta Neurochirurgica.
[13] G. Janiga,et al. Cerebral blood flow in a healthy Circle of Willis and two intracranial aneurysms: computational fluid dynamics versus four-dimensional phase-contrast magnetic resonance imaging. , 2014, Journal of biomechanical engineering.
[14] Stephen Rudin,et al. Evaluation of an asymmetric stent patch design for a patient specific intracranial aneurysm using computational fluid dynamic (CFD) calculations in the computed tomography (CT) derived lumen , 2006, SPIE Medical Imaging.
[15] C M Putman,et al. Hemodynamic Patterns of Anterior Communicating Artery Aneurysms: A Possible Association with Rupture , 2009, American Journal of Neuroradiology.
[16] W. Stehbens,et al. Etiology of intracranial berry aneurysms. , 1989, Journal of neurosurgery.
[17] G J Hademenos,et al. Biophysical mechanisms of stroke. , 1997, Stroke.
[18] H V Ortega,et al. Computer simulation helps predict cerebral aneurysms. , 1998, Journal of medical engineering & technology.
[19] Aichi Chien,et al. Patient-specific flow analysis of brain aneurysms at a single location: comparison of hemodynamic characteristics in small aneurysms , 2008, Medical & Biological Engineering & Computing.
[20] V M Pereira,et al. Evaluation of the influence of inlet boundary conditions on computational fluid dynamics for intracranial aneurysms: a virtual experiment. , 2013, Journal of biomechanics.
[21] F. Mut,et al. Association between hemodynamic conditions and occlusion times after flow diversion in cerebral aneurysms , 2014, Journal of NeuroInterventional Surgery.
[22] Fumihito Arai,et al. In vitro strain measurements in cerebral aneurysm models for cyber‐physical diagnosis , 2013, The international journal of medical robotics + computer assisted surgery : MRCAS.
[23] Anne M Robertson,et al. Sensitivity of CFD based hemodynamic results in rabbit aneurysm models to idealizations in surrounding vasculature. , 2010, Journal of biomechanical engineering.
[24] V. Pereira,et al. Flow diversion treatment: intra-aneurismal blood flow velocity and WSS reduction are parameters to predict aneurysm thrombosis , 2012, Acta Neurochirurgica.
[25] G E Karniadakis,et al. Flow instability and wall shear stress variation in intracranial aneurysms , 2010, Journal of The Royal Society Interface.
[26] Luca Antiga,et al. An Integrated Statistical Investigation of Internal Carotid Arteries of Patients Affected by Cerebral Aneurysms , 2012 .
[27] Thomas Redel,et al. Hemodynamics at the ostium of cerebral aneurysms with relation to post-treatment changes by a virtual flow diverter: A computational fluid dynamics study , 2013, 2013 35th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[28] Y Hoi,et al. An objective approach to digital removal of saccular aneurysms: technique and applications. , 2009, The British journal of radiology.
[29] Kendall D Dennis,et al. Grid convergence errors in hemodynamic solution of patient-specific cerebral aneurysms. , 2012, Journal of biomechanics.
[30] Alejandro F. Frangi,et al. The Role of Computational Fluid Dynamics in the Management of Unruptured Intracranial Aneurysms: A Clinicians' View , 2009, Comput. Intell. Neurosci..
[31] Z. Jing,et al. Multilayer stents, a new progress in the endovascular treatment of aneurysms. , 2013, Chinese medical journal.
[32] Aichi Chien,et al. Computational hemodynamics framework for the analysis of cerebral aneurysms , 2011, International journal for numerical methods in biomedical engineering.
[33] Alejandro F. Frangi,et al. A Virtual Coiling Technique for Image-Based Aneurysm Models by Dynamic Path Planning , 2013, IEEE Transactions on Medical Imaging.
[34] Weixiong Wang,et al. Giant intracranial aneurysm embolization with a yield stress fluid material: insights from CFD analysis. , 2013, Biorheology.
[35] Anne M Robertson,et al. Can aspect ratio be used to categorize intra-aneurysmal hemodynamics?--A study of elastase induced aneurysms in rabbit. , 2011, Journal of biomechanics.
[36] Shengzhang Wang,et al. Influence of Hemodynamic Factors on Rupture of Intracranial Aneurysms: Patient-Specific 3D Mirror Aneurysms Model Computational Fluid Dynamics Simulation , 2011, American Journal of Neuroradiology.
[37] T. Ishikawa,et al. Can temporal fluctuation in spatial wall shear stress gradient initiate a cerebral aneurysm? A proposed novel hemodynamic index, the gradient oscillatory number (GON). , 2009, Journal of biomechanics.
[38] Y. Cho,et al. Intracranial aneurysms: flow analysis of their origin and progression. , 1992, AJNR. American journal of neuroradiology.
[39] T. Terada,et al. Hemodynamics of 8 Different Configurations of Stenting for Bifurcation Aneurysms , 2013, American Journal of Neuroradiology.
[40] Christof Karmonik,et al. Quantification of speed-up and accuracy of multi-CPU computational flow dynamics simulations of hemodynamics in a posterior communicating artery aneurysm of complex geometry , 2013, Journal of NeuroInterventional Surgery.
[41] Neil Kelson,et al. Computational fluid dynamic analysis of intracranial aneurysmal bleb formation. , 2013, Neurosurgery.
[42] L. Sangalli,et al. Functional clustering and alignment methods with applications , 2010 .
[43] C. Karmonik,et al. Hemodynamics in a cerebral artery before and after the formation of an aneurysm. , 2006, AJNR. American journal of neuroradiology.
[44] Alvaro Valencia,et al. Fluid Structural Analysis of Human Cerebral Aneurysm Using Their Own Wall Mechanical Properties , 2013, Comput. Math. Methods Medicine.
[45] Alejandro F. Frangi,et al. Computational Hemodynamics in Cerebral Aneurysms: The Effects of Modeled Versus Measured Boundary Conditions , 2010, Annals of Biomedical Engineering.
[46] T. Yoshimoto,et al. Computational simulation of therapeutic parent artery occlusion to treat giant vertebrobasilar aneurysm. , 2004, AJNR. American journal of neuroradiology.
[47] Alejandro F. Frangi,et al. Fast virtual deployment of self-expandable stents: Method and in vitro evaluation for intracranial aneurysmal stenting , 2012, Medical Image Anal..
[48] D F Kallmes,et al. Point: CFD—Computational Fluid Dynamics or Confounding Factor Dissemination , 2012, American Journal of Neuroradiology.
[49] Adnan H Siddiqui,et al. Computer modeling of deployment and mechanical expansion of neurovascular flow diverter in patient-specific intracranial aneurysms. , 2012, Journal of biomechanics.
[50] W. Poon,et al. Current status of computational fluid dynamics for cerebral aneurysms: The clinician’s perspective , 2011, Journal of Clinical Neuroscience.
[51] V. Seifert,et al. Management morbidity and mortality in grade IV and V patients with aneurysmal subarachnoid haemorrhage , 2005, Acta Neurochirurgica.
[52] D. Holdsworth,et al. PIV-measured versus CFD-predicted flow dynamics in anatomically realistic cerebral aneurysm models. , 2008, Journal of biomechanical engineering.
[53] M. O'Rourke,et al. A comparison of the measured and predicted flowfield in a patient-specific model of an abdominal aortic aneurysm , 2008, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[54] M W Collins,et al. Non-Newtonian and flow pulsatility effects in simulation models of a stented intracranial aneurysm , 2011, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[55] H Meng,et al. CFD: Computational Fluid Dynamics or Confounding Factor Dissemination? The Role of Hemodynamics in Intracranial Aneurysm Rupture Risk Assessment , 2014, American Journal of Neuroradiology.
[56] D. Holdsworth,et al. Characterization of volumetric flow rate waveforms in the normal internal carotid and vertebral arteries , 2005, Physiological measurement.
[57] Kohei Aoki,et al. Accurate determination of patient‐specific boundary conditions in computational vascular hemodynamics using 3D cine phase‐contrast MRI , 2013, International journal for numerical methods in biomedical engineering.
[58] J. Schaller,et al. Statistical wall shear stress maps of ruptured and unruptured middle cerebral artery aneurysms , 2012, Journal of The Royal Society Interface.
[59] H. Meng,et al. Counterpoint: Realizing the Clinical Utility of Computational Fluid Dynamics—Closing the Gap , 2012, American Journal of Neuroradiology.
[60] David A. Steinman,et al. Virtual angiography for visualization and validation of computational models of aneurysm hemodynamics , 2005, IEEE Transactions on Medical Imaging.
[61] C. Putman,et al. Aneurysm Rupture Following Treatment with Flow-Diverting Stents: Computational Hemodynamics Analysis of Treatment , 2010, American Journal of Neuroradiology.
[62] Juan R Cebral,et al. Patient-specific computational modeling of cerebral aneurysms with multiple avenues of flow from 3D rotational angiography images. , 2006, Academic radiology.
[63] W. Wang,et al. 3D Computational Fluid Dynamics of a Treated Vertebrobasilar Giant Aneurysm: A Multistage Analysis , 2013, American Journal of Neuroradiology.
[64] George Em Karniadakis,et al. Wall Shear Stress and Pressure Distribution on Aneurysms and Infundibulae in the Posterior Communicating Artery Bifurcation , 2009, Annals of Biomedical Engineering.
[65] Alejandro F. Frangi,et al. Newtonian and non-Newtonian blood flow in coiled cerebral aneurysms. , 2013, Journal of biomechanics.
[66] A. Veneziani,et al. A Case Study in Exploratory Functional Data Analysis: Geometrical Features of the Internal Carotid Artery , 2009 .
[67] V. Tse,et al. The transition from hunterian ligation to intracranial aneurysm clips: a historical perspective. , 2006, Neurosurgical focus.
[68] H. Steiger,et al. Low frequency flow fluctuations in saccular aneurysms , 2005, Acta Neurochirurgica.
[69] Juan R Cebral,et al. Computational fluid dynamics modeling of intracranial aneurysms: qualitative comparison with cerebral angiography. , 2007, Academic radiology.
[70] Jianping Xiang,et al. Newtonian viscosity model could overestimate wall shear stress in intracranial aneurysm domes and underestimate rupture risk , 2011, Journal of NeuroInterventional Surgery.
[71] Hui Meng,et al. Validation of CFD simulations of cerebral aneurysms with implication of geometric variations. , 2006, Journal of biomechanical engineering.
[72] Weizhe Wang,et al. [Numerical analysis on hemodynamics of cerebral aneurysm clip]. , 2012, Sheng wu yi xue gong cheng xue za zhi = Journal of biomedical engineering = Shengwu yixue gongchengxue zazhi.
[73] F. Ishida,et al. Changes in hemodynamics after placing intracranial stents. , 2013, Neurologia medico-chirurgica.
[74] P N Watton,et al. Computational Fluid Dynamics in Aneurysm Research: Critical Reflections, Future Directions , 2012, American Journal of Neuroradiology.
[75] Til Aach,et al. Comprehensive validation of computational fluid dynamics simulations of in-vivo blood flow in patient-specific cerebral aneurysms. , 2012, Medical physics.
[76] C M Strother,et al. Intracranial Aneurysms, Cancer, X-Rays, and Computational Fluid Dynamics , 2012, American Journal of Neuroradiology.
[77] Kenichi Funamoto,et al. Local Hemodynamics at the Rupture Point of Cerebral Aneurysms Determined by Computational Fluid Dynamics Analysis , 2012, Cerebrovascular Diseases.
[78] Matthias Bertram,et al. Phantom-based experimental validation of computational fluid dynamics simulations on cerebral aneurysms. , 2010, Medical physics.
[79] Fernando Mut,et al. CFD and PIV analysis of hemodynamics in a growing intracranial aneurysm , 2012, International journal for numerical methods in biomedical engineering.
[80] C. Putman,et al. Quantitative Characterization of the Hemodynamic Environment in Ruptured and Unruptured Brain Aneurysms , 2010, American Journal of Neuroradiology.
[81] K Watanabe,et al. Noninvasive detection of intracranial vascular lesions by recording blood flow sounds. , 1994, Stroke.
[82] B. Nahed,et al. Early experience with flow diverting endoluminal stents for the treatment of intracranial aneurysms , 2011, Journal of Clinical Neuroscience.
[83] Ying Zhang,et al. Hemodynamic effects of stenting on wide-necked intracranial aneurysms. , 2010, Chinese medical journal.
[84] Y. Qian,et al. Propose a Wall Shear Stress Divergence to Estimate the Risks of Intracranial Aneurysm Rupture , 2013, TheScientificWorldJournal.
[85] Daniel Collins,et al. Influence of stent configuration on cerebral aneurysm fluid dynamics. , 2012, Journal of biomechanics.
[86] F. Mut,et al. Association of Hemodynamic Characteristics and Cerebral Aneurysm Rupture , 2011, American Journal of Neuroradiology.
[87] Mark Atherton,et al. Beyond the Virtual Intracranial Stenting Challenge 2007: non-Newtonian and flow pulsatility effects. , 2010, Journal of biomechanics.
[88] George E. Karniadakis,et al. Parallel multiscale simulations of a brain aneurysm , 2013, J. Comput. Phys..
[89] E. Boccardi,et al. Factors affecting formation and rupture of intracranial saccular aneurysms , 2013, Neurosurgical Review.
[90] L. Antiga,et al. Intracranial Aneurysm Neck Size Overestimation with 3D Rotational Angiography: The Impact on Intra-Aneurysmal Hemodynamics Simulated with Computational Fluid Dynamics , 2013, American Journal of Neuroradiology.
[91] J. Xiang,et al. Alteration of intra-aneurysmal hemodynamics for flow diversion using enterprise and vision stents. , 2010, World neurosurgery.
[92] E. Scrivano,et al. Blood-Flow Characteristics in a Terminal Basilar Tip Aneurysm Prior to Its Fatal Rupture , 2010, American Journal of Neuroradiology.
[93] David F Kallmes,et al. Computational fluid dynamics simulation of an anterior communicating artery ruptured during angiography , 2013, Journal of NeuroInterventional Surgery.
[94] R. Löhner,et al. Hemodynamic analysis of intracranial aneurysms with moving parent arteries: Basilar tip aneurysms , 2010, International journal for numerical methods in biomedical engineering.
[95] Kyehan Rhee,et al. CFD modeling of blood flow following coil embolization of aneurysms. , 2004, Medical engineering & physics.
[96] D. Holdsworth,et al. Image-based computational simulation of flow dynamics in a giant intracranial aneurysm. , 2003, AJNR. American journal of neuroradiology.
[97] David A. Steinman,et al. An image-based modeling framework for patient-specific computational hemodynamics , 2008, Medical & Biological Engineering & Computing.
[98] David A Steinman,et al. High-resolution CFD detects high-frequency velocity fluctuations in bifurcation, but not sidewall, aneurysms. , 2013, Journal of biomechanics.
[99] David A. Steinman,et al. Automatic Neck Plane Detection and 3D Geometric Characterization of Aneurysmal Sacs , 2012, Annals of Biomedical Engineering.
[100] Roland Bammer,et al. Comparison of hemodynamics of intracranial aneurysms between MR fluid dynamics using 3D cine phase-contrast MRI and MR-based computational fluid dynamics , 2010, Neuroradiology.
[101] J. Mocco,et al. MORPHOLOGY PARAMETERS FOR INTRACRANIAL ANEURYSM RUPTURE RISK ASSESSMENT , 2008, Neurosurgery.
[102] Prahlad G. Menon,et al. Variability of computational fluid dynamics solutions for pressure and flow in a giant aneurysm: the ASME 2012 Summer Bioengineering Conference CFD Challenge. , 2013, Journal of biomechanical engineering.
[103] Christof Karmonik,et al. Comparison of velocity patterns in an AComA aneurysm measured with 2D phase contrast MRI and simulated with CFD. , 2008, Technology and health care : official journal of the European Society for Engineering and Medicine.
[104] Yuri Bazilevs,et al. Determination of Wall Tension in Cerebral Artery Aneurysms by Numerical Simulation , 2008, Stroke.
[105] N. Stergiopulos,et al. Validation of a one-dimensional model of the systemic arterial tree. , 2009, American journal of physiology. Heart and circulatory physiology.
[106] Thomas Redel,et al. Tetrahedral vs. polyhedral mesh size evaluation on flow velocity and wall shear stress for cerebral hemodynamic simulation , 2011, Computer methods in biomechanics and biomedical engineering.
[107] Chander Sadasivan,et al. Endoluminal scaffolds for vascular reconstruction and exclusion of aneurysms from the cerebral circulation. , 2010, Stroke.
[108] A. Malek,et al. Wall shear stress association with rupture status in volume matched sidewall aneurysms , 2013, Journal of NeuroInterventional Surgery.
[109] Y Zhang,et al. A fluid-structure interaction study using patient-specific ruptured and unruptured aneurysm: the effect of aneurysm morphology, hypertension and elasticity. , 2013, Journal of biomechanics.
[110] Christof Karmonik,et al. Temporal variations of wall shear stress parameters in intracranial aneurysms—importance of patient-specific inflow waveforms for CFD calculations , 2010, Acta Neurochirurgica.
[111] H. Marquering,et al. Rupture-Associated Changes of Cerebral Aneurysm Geometry: High-Resolution 3D Imaging before and after Rupture , 2014, American Journal of Neuroradiology.
[112] F Mut,et al. Clinical application of image‐based CFD for cerebral aneurysms , 2011, International journal for numerical methods in biomedical engineering.
[113] M. Siebes,et al. Comparison of Phase-Contrast MR Imaging and Endovascular Sonography for Intracranial Blood Flow Velocity Measurements , 2012, American Journal of Neuroradiology.
[114] Y. Ventikos,et al. Haemodynamic simulation of aneurysm coiling in an anatomically accurate computational fluid dynamics model: technical note , 2008, Neuroradiology.
[115] C M Putman,et al. Computational fluid dynamics modeling of intracranial aneurysms: effects of parent artery segmentation on intra-aneurysmal hemodynamics. , 2006, AJNR. American journal of neuroradiology.
[116] David H Frakes,et al. Finite element modeling of embolic coil deployment: multifactor characterization of treatment effects on cerebral aneurysm hemodynamics. , 2013, Journal of biomechanics.
[117] T. Liou,et al. A review on in vitro studies of hemodynamic characteristics in terminal and lateral aneurysm models. , 1999, Proceedings of the National Science Council, Republic of China. Part B, Life sciences.
[118] Alejandro F Frangi,et al. Intra-Aneurysmal Pressure and Flow Changes Induced by Flow Diverters: Relation to Aneurysm Size and Shape , 2013, American Journal of Neuroradiology.
[119] H. Langtangen,et al. Direct numerical simulation of transitional flow in a patient-specific intracranial aneurysm. , 2011, Journal of biomechanics.
[120] Alejandro F Frangi,et al. Reproducibility of haemodynamical simulations in a subject-specific stented aneurysm model--a report on the Virtual Intracranial Stenting Challenge 2007. , 2008, Journal of biomechanics.
[121] Thomas Redel,et al. Tetrahedral and polyhedral mesh evaluation for cerebral hemodynamic simulation — A comparison , 2009, 2009 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[122] K. Katada,et al. Magnitude and Role of Wall Shear Stress on Cerebral Aneurysm: Computational Fluid Dynamic Study of 20 Middle Cerebral Artery Aneurysms , 2004, Stroke.
[123] C. Putman,et al. Characterization of cerebral aneurysms for assessing risk of rupture by using patient-specific computational hemodynamics models. , 2005, AJNR. American journal of neuroradiology.
[124] Alastair J. Martin,et al. Numerical simulations of flow in cerebral aneurysms: comparison of CFD results and in vivo MRI measurements. , 2008, Journal of biomechanical engineering.
[125] L. Antiga,et al. Rethinking turbulence in blood. , 2009, Biorheology.
[126] Simone Vantini,et al. K-mean Alignment for Curve Clustering , 2010, Comput. Stat. Data Anal..
[127] T. Terada,et al. Treatment strategy and follow-up evaluation for an unruptured anterior communicating artery aneurysm associated with pseudo-occlusion of the internal carotid artery using computational fluid dynamics simulations. , 2014, Turkish neurosurgery.