D. K. Woo, A. L. Lopes, D. J. Berez, A. H. Cher, E. I. Siddiqui et al., Pipeline for uncoilable or failed aneurysms: results from a multicenter clinical trial, Radiology, vol.267, issue.3, pp.858-868, 2013.

J. Berge, A. Biondi, P. Machi, H. Brunel, L. Pierot et al., Flow-Diverter Silk Stent for the Treatment of Intracranial Aneurysms: 1-year Follow-Up in a Multicenter Study, American Journal of Neuroradiology, vol.33, issue.6, pp.1150-1155, 2012.
DOI : 10.3174/ajnr.A2907

P. Berg, G. Janiga, O. Beuing, C. Rössl, and D. Thévenin, Virtual Intracranial Stenting: How does stent porosity influence hemodynamics?, Interventional Neuroradiology, vol.11, issue.19 1, p.191, 2013.

P. Berg, D. Stucht, G. Janiga, O. Beuing, O. Speck 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, Journal of Biomechanical Engineering, vol.136, issue.4, 2014.
DOI : 10.1115/1.4026108

G. Saletti, L. P. Sirabella, and . Bolge, Italian multicenter experience with flow-diverter devices for intracranial unruptured aneurysm treatment with periprocedural complications-a retrospective data analysis, Neuroradiology

W. Brinjikji, D. F. Kallmes, H. J. Cloft, and G. Lanzino, Patency of the Anterior Choroidal Artery after Flow-Diversion Treatment of Internal Carotid Artery Aneurysms, American Journal of Neuroradiology, vol.36, issue.3, pp.537-541, 2015.
DOI : 10.3174/ajnr.A4139

W. Brinjikji, G. Lanzino, H. J. Cloft, and D. F. Kallmes, Patency of the posterior communicating artery after flow diversion treatment of internal carotid artery aneurysms, Clinical Neurology and Neurosurgery, vol.120, pp.84-88, 2014.
DOI : 10.1016/j.clineuro.2014.02.018

W. Brinjikji, M. H. Murad, G. Lanzino, H. J. Cloft, and D. F. Kallmes, Endovascular Treatment of Intracranial Aneurysms With Flow Diverters: A Meta-Analysis, Stroke, vol.44, issue.2, pp.442-447, 2013.
DOI : 10.1161/STROKEAHA.112.678151

B. Burbridge, G. Matte, and A. Remedios, Complex intracranial arterial anatomy in swine is unsuitable for cerebral infarction projects, Can Assoc Radiol J, vol.55, issue.5, pp.326-329, 2004.

J. V. Byrne, R. Beltechi, J. A. Yarnold, J. Birks, and M. Kamran, Early Experience in the Treatment of Intra-Cranial Aneurysms by Endovascular Flow Diversion: A Multicentre Prospective Study, PLoS ONE, vol.108, issue.6
DOI : 10.1371/journal.pone.0012492.t004

J. Caroff, H. Neki, C. Mihalea, F. D. Argento, H. Khalek et al., Flow-Diverter Stents for the Treatment of Saccular Middle Cerebral Artery Bifurcation Aneurysms, American Journal of Neuroradiology, vol.37, issue.2, 2015.
DOI : 10.3174/ajnr.A4540

J. R. Cebral, M. Raschi, F. Mut, Y. H. Ding, D. Dai et al., Analysis of flow changes in side branches jailed by flow diverters in rabbit models, International Journal for Numerical Methods in Biomedical Engineering, vol.16, issue.3, pp.988-999, 2014.
DOI : 10.1002/cnm.2640

N. Chalouhi, R. M. Starke, S. Yang, C. D. Bovenzi, S. Tjoumakaris et al., Extending the Indications of Flow Diversion to Small, Unruptured, Saccular Aneurysms of the Anterior Circulation, Stroke, vol.45, issue.1, pp.54-58, 2014.
DOI : 10.1161/STROKEAHA.113.003038

J. C. Chaloupka, F. Vinuela, J. Robert, and G. R. Duckwiler, An in vivo arteriovenous malformation model in swine: preliminary feasibility and natural history study, AJNR Am J Neuroradiol, vol.15, issue.5, pp.945-950, 1994.

C. Chang, A. Uchiyama, L. Ma, T. Mashimo, and Y. Fujino, A Comparison of the Effects on Respiratory Carbon Dioxide Response, Arterial Blood Pressure, and Heart Rate of Dexmedetomidine, Propofol, and Midazolam in Sevoflurane-Anesthetized Rabbits, Anesthesia & Analgesia, vol.109, issue.1, pp.84-89, 2009.
DOI : 10.1213/ane.0b013e3181a2ad5f

G. P. Colby, L. M. Lin, J. F. Gomez, A. R. Paul, J. Huang et al., 100???Immediate Procedural Outcomes in 35 Consecutive Pipeline Embolization Cases, Neurosurgery, vol.71, issue.2
DOI : 10.1227/01.neu.0000417690.43434.8c

D. Dai, Y. H. Ding, R. Kadirvel, A. E. Rad, D. A. Lewis et al., Patency of Branches after Coverage with Multiple Telescoping Flow-Diverter Devices: An In Vivo Study in Rabbits, American Journal of Neuroradiology, vol.33, issue.1, pp.171-174
DOI : 10.3174/ajnr.A2879

D. Dai, Y. H. Ding, R. Kadirvel, A. E. Rad, D. A. Lewis et al., Patency of Branches after Coverage with Multiple Telescoping Flow-Diverter Devices: An In Vivo Study in Rabbits, American Journal of Neuroradiology, vol.33, issue.1, pp.171-174, 2012.
DOI : 10.3174/ajnr.A2879

T. E. Darsaut, F. Bing, A. Makoyeva, G. Gevry, I. Salazkin et al., Flow Diversion of Giant Curved Sidewall and Bifurcation Experimental Aneurysms with Very-Low-Porosity Devices, World Neurosurgery, vol.82, issue.6, 2013.
DOI : 10.1016/j.wneu.2013.09.036

T. E. Darsaut, F. Bing, I. Salazkin, G. Gevry, and J. Raymond, Flow Diverters Can Occlude Aneurysms and Preserve Arterial Branches: A New Experimental Model, American Journal of Neuroradiology, vol.33, issue.10, pp.2004-2009, 2012.
DOI : 10.3174/ajnr.A3075

T. E. Darsaut, F. Bing, I. Salazkin, G. Gevry, and J. Raymond, Flow diverters failing to occlude experimental bifurcation or curved sidewall aneurysms: an in vivo study in canines, Journal of Neurosurgery, vol.117, issue.1, pp.37-44, 2012.
DOI : 10.3171/2012.4.JNS111916

P. F. Davies and D. E. Bowyer, Scanning electron microscopy: Arterial endothelial integrity after fixation at physiological pressure, Atherosclerosis, vol.21, issue.3, pp.463-469, 1975.
DOI : 10.1016/0021-9150(75)90059-3

M. De-barros-faria, R. N. Castro, J. Lundquist, E. Scrivano, R. Ceratto et al., The Role of the Pipeline Embolization Device for the Treatment of Dissecting Intracranial Aneurysms, American Journal of Neuroradiology, vol.32, issue.11, pp.2192-2195
DOI : 10.3174/ajnr.A2671

. Nelson, Curative cerebrovascular reconstruction with the Pipeline embolization device: the emergence of definitive endovascular therapy for intracranial aneurysms, J Neurointerv Surg, vol.1, issue.1, pp.56-65, 2009.

S. Fischer, Z. Vajda, M. Aguilar-perez, E. Schmid, N. Hopf et al., Pipeline embolization device (PED) for neurovascular reconstruction: initial experience in the treatment of 101 intracranial aneurysms and dissections, Neuroradiology, vol.52, issue.4 Suppl 2, pp.369-382
DOI : 10.1007/s00234-011-0948-x

A. L. Garcia-villalon, J. M. Roda, F. Alvarez, B. Gomez, and G. Dieguez, Carotid blood flow in anesthetized rats: Effects of carotid ligation and anastomosis, Microsurgery, vol.43, issue.5, pp.258-261, 1992.
DOI : 10.1002/micr.1920130513

G. Gascou, K. Lobotesis, H. Brunel, P. Machi, C. Riquelme et al., Extra-Aneurysmal Flow Modification Following Pipeline Embolization Device Implantation: Focus on Regional Branches, Perforators, and the Parent Vessel, American Journal of Neuroradiology, vol.36, issue.4, pp.725-731, 2015.
DOI : 10.3174/ajnr.A4191

M. Gawlitza, A. C. Januel, P. Tall, F. Bonneville, and C. Cognard, Flow diversion treatment of complex bifurcation aneurysms beyond the circle of Willis: a single-center series with special emphasis on covered cortical branches and perforating arteries, Journal of NeuroInterventional Surgery, vol.117, issue.5, 2015.
DOI : 10.1136/neurintsurg-2015-011682

I. Goldsmith, P. Kumar, P. Carter, A. D. Blann, R. L. Patel et al., Atrial endocardial changes in mitral valve disease: A scanning electron microscopy study, American Heart Journal, vol.140, issue.5, pp.777-784, 2000.
DOI : 10.1067/mhj.2000.110284

P. Jankowski, K. A. Ruiz-noppinger, I. R. Hossmann, and . Buschmann, Induction of cerebral arteriogenesis leads to early-phase expression of protease inhibitors in growing collaterals of the brain, J Cereb Blood Flow Metab, vol.28, issue.11, pp.1811-1823, 2008.

B. Hong, K. Wang, Q. Huang, Y. Xu, X. Fang et al., Effects of metal coverage rate of flow diversion device on neointimal growth at side branch ostium and stented artery: an animal experiment in rabbit abdominal aorta, Neuroradiology, vol.81, issue.Suppl 1
DOI : 10.1007/s00234-011-0984-6

B. Hong, K. Wang, Q. Huang, Y. Xu, X. Fang et al., Effects of metal coverage rate of flow diversion device on neointimal growth at side branch ostium and stented artery: an animal experiment in rabbit abdominal aorta, Neuroradiology, vol.81, issue.Suppl 1, pp.849-855, 2012.
DOI : 10.1007/s00234-011-0984-6

P. Hu, Y. Qian, Y. Zhang, H. Q. Zhang, Y. Li et al., Blood flow reduction of covered small side branches after flow diverter treatment: A computational fluid hemodynamic quantitative analysis, Journal of Biomechanics, vol.48, issue.6, pp.895-898, 2015.
DOI : 10.1016/j.jbiomech.2015.02.015

C. Iosif, Y. Camilleri, S. Saleme, F. Caire, C. Yardin et al., Diffusion-weighted imaging???detected ischemic lesions associated with flow-diverting stents in intracranial aneurysms: safety, potential mechanisms, clinical outcome, and concerns, Journal of Neurosurgery, vol.122, issue.3, pp.1-10, 2015.
DOI : 10.3171/2014.10.JNS132566

C. Iosif, P. Carles, G. Trolliard, C. Yardin, and C. Mounayer, Scanning electron microscopy for flow-diverting stent research: technical tips and tricks, Microscopy, vol.64, issue.3, pp.219-223, 2015.
DOI : 10.1093/jmicro/dfv009

G. Janiga, P. Berg, O. Beuing, M. Neugebauer, R. Gasteiger et al., Recommendations for accurate numerical blood flow simulations of stented intracranial aneurysms, Biomedizinische Technik/Biomedical Engineering, vol.58, issue.3, pp.303-314, 2013.
DOI : 10.1515/bmt-2012-0119

G. Janiga, C. Rossl, M. Skalej, and D. Thevenin, Realistic virtual intracranial stenting and computational fluid dynamics for treatment analysis, Journal of Biomechanics, vol.46, issue.1, pp.7-12, 2013.
DOI : 10.1016/j.jbiomech.2012.08.047

J. Jiang, C. Strother, K. Johnson, S. Baker, D. Consigny et al., Comparison of blood velocity measurements between ultrasound Doppler and accelerated phase-contrast MR angiography in small arteries with disturbed flow, Physics in Medicine and Biology, vol.56, issue.6, pp.1755-1773, 2011.
DOI : 10.1088/0031-9155/56/6/015

D. F. Kallmes, Y. H. Ding, D. Dai, R. Kadirvel, D. A. Lewis et al., A New Endoluminal, Flow-Disrupting Device for Treatment of Saccular Aneurysms, Stroke, vol.38, issue.8, pp.2346-2352, 2007.
DOI : 10.1161/STROKEAHA.106.479576

D. F. Kallmes, Y. H. Ding, D. Dai, R. Kadirvel, D. A. Lewis et al., A Second-Generation, Endoluminal, Flow-Disrupting Device for Treatment of Saccular Aneurysms, American Journal of Neuroradiology, vol.30, issue.6, pp.1153-1158, 2009.
DOI : 10.3174/ajnr.A1530

C. Karmonik, C. Yen, R. G. Grossman, R. Klucznik, and G. Benndorf, Intra-aneurysmal flow patterns and wall shear stresses calculated with computational flow dynamics in an anterior communicating artery aneurysm depend on knowledge of patient-specific inflow rates, Acta Neurochirurgica, vol.18, issue.5, pp.479-485, 2009.
DOI : 10.1007/s00701-009-0247-z

H. U. Kerl, H. Boll, T. Fiebig, G. Figueiredo, A. Forster et al., Implantation of Pipeline Flow-Diverting Stents Reduces Aneurysm Inflow Without Relevantly Affecting Static Intra-aneurysmal Pressure, Neurosurgery, vol.74, issue.3, pp.321-334, 2014.
DOI : 10.1227/NEU.0000000000000253

C. Kilkenny, W. Browne, I. C. Cuthill, M. Emerson, D. G. Altman et al., Animal research: reporting in vivo experiments--the ARRIVE guidelines, National Centre for the Replacement and R. Reduction of Amimals in J Cereb Blood Flow Metab, vol.31, issue.4, pp.991-993, 2011.

N. Kobayashi, S. Miyachi, T. Okamoto, K. Hattori, T. Kojima et al., Computer Simulation of Flow Dynamics in an Intracranial Aneurysm, Interventional Neuroradiology, vol.26, issue.1_suppl, pp.155-160, 2004.
DOI : 10.1177/15910199040100S127

A. L. Kuhn, S. Y. Hou, M. Perras, C. Brooks, M. J. Gounis et al., Flow diverter stents for unruptured saccular anterior circulation perforating artery aneurysms: safety, efficacy, and short-term follow-up, Journal of NeuroInterventional Surgery, vol.44, issue.(Suppl 1), pp.634-640, 2015.
DOI : 10.1136/neurintsurg-2014-011237

Z. Kulcsar, U. Ernemann, S. G. Wetzel, A. Bock, S. Goericke et al., High-Profile Flow Diverter (Silk) Implantation in the Basilar Artery: Efficacy in the Treatment of Aneurysms and the Role of the Perforators, Stroke, vol.41, issue.8, pp.1690-1696
DOI : 10.1161/STROKEAHA.110.580308

R. R. Lall, E. Crobeddu, G. Lanzino, H. J. Cloft, and D. F. Kallmes, Acute branch occlusion after Pipeline embolization of intracranial aneurysms, Journal of Clinical Neuroscience, vol.21, issue.4, pp.668-672, 2014.
DOI : 10.1016/j.jocn.2013.07.011

B. B. Lieber, A. P. Stancampiano, and A. K. Wakhloo, Alteration of hemodynamics in aneurysm models by stenting: Influence of stent porosity, Annals of Biomedical Engineering, vol.16, issue.3, pp.460-469, 1997.
DOI : 10.1007/BF02684187

T. M. Liou and Y. C. Li, Effects of stent porosity on hemodynamics in a sidewall aneurysm model, Journal of Biomechanics, vol.41, issue.6, pp.1174-1183, 2008.
DOI : 10.1016/j.jbiomech.2008.01.025

B. Lubicz, L. Collignon, G. Raphaeli, and O. Witte, Pipeline Flow-Diverter Stent for Endovascular Treatment of Intracranial Aneurysms: Preliminary Experience in 20 Patients with 27 Aneurysms, World Neurosurgery, vol.76, issue.1-2, pp.114-119
DOI : 10.1016/j.wneu.2011.02.015

B. Lubicz, L. Collignon, G. Raphaeli, J. P. Pruvo, M. Bruneau et al., Flow-Diverter Stent for the Endovascular Treatment of Intracranial Aneurysms: A Prospective Study in 29 Patients With 34 Aneurysms, Stroke, vol.41, issue.10, pp.2247-2253
DOI : 10.1161/STROKEAHA.110.589911

P. Lylyk, C. Miranda, R. Ceratto, A. Ferrario, E. Scrivano et al., Curative Endovascular Reconstruction of Cerebral Aneurysms with the Pipeline Embolization Device: the Buenos Aires Experience, Neurosurgery, vol.64, issue.4, pp.632-642, 2009.
DOI : 10.1227/01.NEU.0000339109.98070.65

S. Maimon, L. Gonen, E. Nossek, I. Strauss, R. Levite et al., Treatment of intra-cranial aneurysms with the SILK flow diverter: 2 years??? experience with 28 patients at a single center, Acta Neurochirurgica, vol.226, issue.1, pp.979-987
DOI : 10.1007/s00701-012-1316-2

T. F. Massoud, C. Ji, F. Vinuela, G. Guglielmi, J. Robert et al., An experimental arteriovenous malformation model in swine: anatomic basis and construction technique, AJNR Am J Neuroradiol, vol.15, issue.8, pp.1537-1545, 1994.

O. Masuo, T. Terada, T. Tsumoto, H. Yamaga, K. Nakai et al., The Study on the Patency of the Perforating Arteries after Stent Placement in Atherosclerosis Induced Rabbits, Interventional Neuroradiology, vol.104, issue.1_suppl, pp.57-62, 2004.
DOI : 10.1177/15910199040100S107

O. Masuo, T. Terada, G. Walker, M. Tsuura, H. Matsumoto et al., Study of the patency of small arterial branches after stent placement with an experimental in vivo model, AJNR Am J Neuroradiol, vol.23, issue.4, pp.706-710, 2002.

O. Masuo, T. Terada, G. Walker, M. Tsuura, K. Nakai et al., Patency of perforating arteries after stent placement? A study using an in vivo experimental atherosclerosis-induced model, AJNR Am J Neuroradiol, vol.26, issue.3, pp.543-548, 2005.

W. Mcauliffe and J. D. Wenderoth, Immediate and Midterm Results following Treatment of Recently Ruptured Intracranial Aneurysms with the Pipeline Embolization Device, American Journal of Neuroradiology, vol.33, issue.3, pp.487-493
DOI : 10.3174/ajnr.A2797

A. Molyneux, R. Kerr, I. Stratton, P. Sandercock, M. Clarke et al., International Subarachnoid Aneurysm Trial (ISAT) of neurosurgical clipping versus endovascular coiling in 2143 patients with ruptured intracranial aneurysms: A randomized trial, Journal of Stroke and Cerebrovascular Diseases, vol.11, issue.6, pp.304-314, 2002.
DOI : 10.1053/jscd.2002.130390

J. Moret, C. Cognard, A. Weill, L. Castaings, and A. Rey, [Reconstruction technic in the treatment of wide-neck intracranial aneurysms. Long-term angiographic and clinical results. Apropos of 56 cases], J Neuroradiol, vol.24, issue.1, pp.30-44, 1997.

P. K. Nelson, P. Lylyk, I. Szikora, S. G. Wetzel, I. Wanke et al., The Pipeline Embolization Device for the Intracranial Treatment of Aneurysms Trial, American Journal of Neuroradiology, vol.32, issue.1, pp.34-40
DOI : 10.3174/ajnr.A2421

C. E. Newcomer, The evolution and adoption of standards used by AAALAC, J Am Assoc Lab Anim Sci, vol.51, issue.3, pp.293-297, 2012.

J. C. Oliveira and R. Campos, A Systematic Study of Brain Base Arteries in the Wild Boar (Sus scrofa scrofa), Anatomia, Histologia, Embryologia: Journal of Veterinary Medicine Series C, vol.2, issue.4, pp.232-239, 2005.
DOI : 10.1002/cne.901530305

L. Pierot, A. C. Januel, D. Herbreteau, X. Barreau, J. Drouineau et al., Endovascular Treatment of Brain Arteriovenous Malformations Using Onyx: Preliminary Results of a Prospective Multicenter Study, Interventional Neuroradiology, vol.39, issue.1_suppl, pp.159-164, 2005.
DOI : 10.1177/15910199050110S119

S. Pistocchi, R. Blanc, B. Bartolini, and M. Piotin, Flow Diverters at and Beyond the Level of the Circle of Willis for the Treatment of Intracranial Aneurysms, Stroke, vol.43, issue.4, pp.1032-1038
DOI : 10.1161/STROKEAHA.111.636019

R. C. Puffer, D. F. Kallmes, H. J. Cloft, and G. Lanzino, Patency of the ophthalmic artery after flow diversion treatment of paraclinoid aneurysms, Journal of Neurosurgery, vol.116, issue.4, pp.892-896, 2012.
DOI : 10.3171/2011.11.JNS111612

. Nelson, Anterior choroidal artery patency and clinical follow-up after coverage with the pipeline embolization device, AJNR Am J Neuroradiol, vol.36, issue.5, pp.937-942, 2015.

M. A. Reidy and B. L. Langille, The effect of local blood flow patterns on endothelial cell morphology, Experimental and Molecular Pathology, vol.32, issue.3, pp.276-289, 1980.
DOI : 10.1016/0014-4800(80)90061-1

J. Rosenorn, V. Eskesen, K. Schmidt, and F. Ronde, The risk of rebleeding from ruptured intracranial aneurysms, Journal of Neurosurgery, vol.67, issue.3, pp.329-332, 1987.
DOI : 10.3171/jns.1987.67.3.0329

A. Rouchaud, O. Leclerc, Y. Benayoun, S. Saleme, Y. Camilleri et al., Visual Outcomes with Flow-Diverter Stents Covering the Ophthalmic Artery for Treatment of Internal Carotid Artery Aneurysms, American Journal of Neuroradiology, vol.36, issue.2, pp.330-336, 2015.
DOI : 10.3174/ajnr.A4129

C. Sadasivan, L. Cesar, J. Seong, A. Rakian, Q. Hao et al., An Original Flow Diversion Device for the Treatment of Intracranial Aneurysms: Evaluation in the Rabbit Elastase-Induced Model, Stroke, vol.40, issue.3, pp.952-958, 2009.
DOI : 10.1161/STROKEAHA.108.533760

S. Saleme, C. Iosif, S. Ponomarjova, G. Mendes, Y. Camilleri et al., Flow-Diverting Stents for Intracranial Bifurcation Aneurysm Treatment, Neurosurgery, vol.75, issue.6, pp.623-631, 2014.
DOI : 10.1227/NEU.0000000000000522

J. Schindelin, I. Arganda-carreras, E. Frise, V. Kaynig, M. Longair et al., Fiji: an open-source platform for biological-image analysis, Nature Methods, vol.27, issue.7, pp.676-682, 2012.
DOI : 10.1038/nmeth.2019

URL : http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3855844

R. Siekmann, A. K. Wakhloo, B. B. Lieber, M. J. Gounis, A. A. Divani et al., Modification of a previously described arteriovenous malformation model in the swine: endovascular and combined surgical/endovascular construction and hemodynamics, AJNR Am J Neuroradiol, vol.21, issue.9, pp.1722-1725, 2000.

I. Szikora, Z. Berentei, Z. Kulcsar, M. Marosfoi, Z. S. Vajda et al., Treatment of Intracranial Aneurysms by Functional Reconstruction of the Parent Artery: The Budapest Experience with the Pipeline Embolization Device, American Journal of Neuroradiology, vol.31, issue.6, pp.1139-1147
DOI : 10.3174/ajnr.A2023

A. Valls-i-soler and R. R. Wauer, 2nd European symposium on liquid ventilation, Eur J Med Res, vol.6, issue.3, pp.115-138, 2001.

A. Wagner, M. Cortsen, J. Hauerberg, B. Romner, and M. P. Wagner, Treatment of intracranial aneurysms. Reconstruction of the parent artery with flow-diverting (Silk) stent, Neuroradiology, vol.32, issue.7
DOI : 10.1007/s00234-011-0949-9

K. Yavuz, S. Geyik, I. Saatci, and H. S. Cekirge, Endovascular Treatment of Middle Cerebral Artery Aneurysms with Flow Modification with the Use of the Pipeline Embolization Device, American Journal of Neuroradiology, vol.35, issue.3, pp.529-535, 2014.
DOI : 10.3174/ajnr.A3692

M. Zanaty, N. Chalouhi, S. I. Tjoumakaris, L. F. Gonzalez, R. Rosenwasser et al., Flow diversion for complex middle cerebral artery aneurysms, Neuroradiology, vol.34, issue.12, pp.381-387, 2014.
DOI : 10.1007/s00234-014-1339-x

B. W. Zweifach, Quantitative studies of microcirculatory structure and function. I. Analysis of pressure distribution in the terminal vascular bed in cat mesentery, Circ Res, vol.34, issue.6, pp.843-857, 1974.

. Von-guericke, Laboratory of Fluid Dynamics and Technical Flows

I. Flow, P. Sebastien, P. Eduardo, F. Mathieu, and M. Geogre, Competition as a Factor of Jailed Arterial Branch Fate in Endovascular Flow Diversion: Model Description and Preliminary Results Christina IOSIF¹

C. Service-de-neuroradiologie-interventionnelle and . Limoges, Service d'Anesthésie

C. Mendes-1, Yardin 2,5 and C

. Von-guericke, Laboratory of Fluid Dynamics and Technical Flows