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A Computational Framework to Assess the Influence of Changes in Vascular Geometry on Blood Flow.

, , and . PASC, page 2:1-2:8. ACM, (2017)

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A Computational Framework to Assess the Influence of Changes in Vascular Geometry on Blood Flow., , and . PASC, page 2:1-2:8. ACM, (2017)Immersed Boundary Method Halo Exchange in a Hemodynamics Application., , and . ICCS (1), volume 11536 of Lecture Notes in Computer Science, page 441-455. Springer, (2019)Massively parallel models of the human circulatory system., , , , and . SC, page 1:1-1:11. ACM, (2015)Massively parallel simulations of hemodynamics in the primary large arteries of the human vasculature., , and . J. Comput. Science, (2015)Moment representation in the lattice Boltzmann method on massively parallel hardware., , , , and . SC, page 34:1-34:21. ACM, (2019)Evaluation of U-Net Based Architectures for Automatic Aortic Dissection Segmentation., , , , , , , , , and . ACM Trans. Comput. Heal., 3 (1): 11:1-11:16 (2022)Multi-physics simulations of particle tracking in arterial geometries with a scalable moving window algorithm., , , , and . CLUSTER, page 1-11. IEEE, (2019)DOE Computational Science Graduate Fellowship Research Showcase., , , and . Comput. Sci. Eng., 23 (6): 5-8 (2021)Performance portability study for massively parallel computational fluid dynamics application on scalable heterogeneous architectures., , , and . J. Parallel Distrib. Comput., (2019)Analysis of Pressure Gradient Across Aortic Stenosis with Massively Parallel Computational Simulation., , and . CinC, page 217-220. www.cinc.org, (2014)