TY - JOUR
T1 - A virtual coiling technique for image-based aneurysm models by dynamic path planning
AU - Morales, Hernán G.
AU - Larrabide, Ignacio
AU - Geers, Arjan J.
AU - Roman, Luis San
AU - Blasco, Jordi
AU - MacHo, Juan M.
AU - Frangi, Alejandro F.
PY - 2013
Y1 - 2013
N2 - Computational algorithms modeling the insertion of endovascular devices, such as coil or stents, have gained an increasing interest in recent years. This scientific enthusiasm is due to the potential impact that these techniques have to support clinicians by understanding the intravascular hemodynamics and predicting treatment outcomes. In this work, a virtual coiling technique for treating image-based aneurysm models is proposed. A dynamic path planning was used to mimic the structure and distribution of coils inside aneurysm cavities, and to reach high packing densities, which is desirable by clinicians when treating with coils. Several tests were done to evaluate the performance on idealized and image-based aneurysm models. The proposed technique was validated using clinical information of real coiled aneurysms. The virtual coiling technique reproduces the macroscopic behavior of inserted coils and properly captures the densities, shapes and coil distributions inside aneurysm cavities. A practical application was performed by assessing the local hemodynamic after coiling using computational fluid dynamics (CFD). Wall shear stress and intra-aneurysmal velocities were reduced after coiling. Additionally, CFD simulations show that coils decrease the amount of contrast entering the aneurysm and increase its residence time.
AB - Computational algorithms modeling the insertion of endovascular devices, such as coil or stents, have gained an increasing interest in recent years. This scientific enthusiasm is due to the potential impact that these techniques have to support clinicians by understanding the intravascular hemodynamics and predicting treatment outcomes. In this work, a virtual coiling technique for treating image-based aneurysm models is proposed. A dynamic path planning was used to mimic the structure and distribution of coils inside aneurysm cavities, and to reach high packing densities, which is desirable by clinicians when treating with coils. Several tests were done to evaluate the performance on idealized and image-based aneurysm models. The proposed technique was validated using clinical information of real coiled aneurysms. The virtual coiling technique reproduces the macroscopic behavior of inserted coils and properly captures the densities, shapes and coil distributions inside aneurysm cavities. A practical application was performed by assessing the local hemodynamic after coiling using computational fluid dynamics (CFD). Wall shear stress and intra-aneurysmal velocities were reduced after coiling. Additionally, CFD simulations show that coils decrease the amount of contrast entering the aneurysm and increase its residence time.
KW - Cerebral aneurysm
KW - computational fluid dynamics (CFD)
KW - endovascular coiling
KW - image-based models
KW - validation
UR - http://www.scopus.com/inward/record.url?scp=84871956630&partnerID=8YFLogxK
U2 - 10.1109/TMI.2012.2219626
DO - 10.1109/TMI.2012.2219626
M3 - Article
C2 - 23008248
AN - SCOPUS:84871956630
SN - 0278-0062
VL - 32
SP - 119
EP - 129
JO - IEEE transactions on medical imaging
JF - IEEE transactions on medical imaging
IS - 1
M1 - 6307876
ER -