DocumentCode :
742924
Title :
Efficient Lattice Boltzmann Solver for Patient-Specific Radiofrequency Ablation of Hepatic Tumors
Author :
Audigier, Chloe ; Mansi, Tommaso ; Delingette, Herve ; Rapaka, Saikiran ; Mihalef, Viorel ; Carnegie, Daniel ; Boctor, Emad ; Choti, Michael ; Kamen, Ali ; Ayache, Nicholas ; Comaniciu, Dorin
Author_Institution :
Asclepios Res. Group, INRIA Sophia-Antipolis, Sophia-Antipolis, France
Volume :
34
Issue :
7
fYear :
2015
fDate :
7/1/2015 12:00:00 AM
Firstpage :
1576
Lastpage :
1589
Abstract :
Radiofrequency ablation (RFA) is an established treatment for liver cancer when resection is not possible. Yet, its optimal delivery is challenged by the presence of large blood vessels and the time-varying thermal conductivity of biological tissue. Incomplete treatment and an increased risk of recurrence are therefore common. A tool that would enable the accurate planning of RFA is hence necessary. This manuscript describes a new method to compute the extent of ablation required based on the Lattice Boltzmann Method (LBM) and patient-specific, pre-operative images. A detailed anatomical model of the liver is obtained from volumetric images. Then a computational model of heat diffusion, cellular necrosis, and blood flow through the vessels and liver is employed to compute the extent of ablated tissue given the probe location, ablation duration and biological parameters. The model was verified against an analytical solution, showing good fidelity. We also evaluated the predictive power of the proposed framework on ten patients who underwent RFA, for whom pre- and post-operative images were available. Comparisons between the computed ablation extent and ground truth, as observed in postoperative images, were promising (DICE index: 42%, sensitivity: 67%, positive predictive value: 38%). The importance of considering liver perfusion while simulating electrical-heating ablation was also highlighted. Implemented on graphics processing units (GPU), our method simulates 1 minute of ablation in 1.14 minutes, allowing near real-time computation.
Keywords :
blood vessels; haemorheology; lattice Boltzmann methods; liver; radiation therapy; radiofrequency imaging; tumours; GPU; anatomical model; blood flow; blood vessels; cellular necrosis; electrical-heating ablation; graphics processing units; heat diffusion; hepatic tumors; lattice Boltzmann method; liver perfusion; patient-specific RFA; preoperative image; radiofrequency ablation; Biological system modeling; Blood; Computational modeling; Equations; Heat transfer; Liver; Mathematical model; Computational fluid dynamics; Lattice Boltzmann method; heat transfer; patient-specific simulation; radio frequency ablation; therapy planning;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2015.2406575
Filename :
7047845
Link To Document :
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