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Massively parallel simulations of hemodynamics in the primary large arteries of the human vasculature.

, , and . J. Comput. Sci., (2015)

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Beyond homogeneous decomposition: scaling long-range forces on Massively Parallel Systems., , , , , , , , , and 1 other author(s). SC, ACM, (2009)Numerical simulation of a compound capsule in a constricted microchannel., , and . ICCS, volume 108 of Procedia Computer Science, page 175-184. Elsevier, (2017)Strengthening the US Department of Energy's Recruitment Pipeline: The DOE/NNSA Predictive Science Academic Alliance Program (PSAAP) Experience., , , , , , , , and . PEARC, page 137-144. ACM, (2023)Optimizing Cloud Computing Resource Usage for Hemodynamic Simulation., , , , , , and . IPDPS, page 568-578. IEEE, (2023)Massively parallel models of the human circulatory system., , , , and . SC, page 1:1-1:11. ACM, (2015)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)How community software ecosystems can unlock the potential of exascale computing., , , , , and . Nat. Comput. Sci., 1 (2): 92-94 (2021)Exascale Was Not Inevitable; Neither Is What Comes Next., and . Comput. Sci. Eng., 25 (3): 79-83 (May 2023)Multi-GPU immersed boundary method hemodynamics simulations., , , , , and . J. Comput. Sci., (2020)Enhancing Adaptive Physics Refinement Simulations Through the Addition of Realistic Red Blood Cell Counts., , , , , , , and . SC, page 41:1-41:13. ACM, (2023)