An Automated Workflow for Hemodynamic Computations in Cerebral Aneurysms

Joint Authors

Mihalef, Viorel
Sharma, Puneet
Takao, H.
Murayama, Y.
Itu, L. M.
Nita, Cosmin-Ioan
Suzuki, Takashi
Redel, Thomas
Rapaka, Saikiran

Source

Computational and Mathematical Methods in Medicine

Issue

Vol. 2020, Issue 2020 (31 Dec. 2020), pp.1-20, 20 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2020-06-17

Country of Publication

Egypt

No. of Pages

20

Main Subjects

Medicine

Abstract EN

In recent years, computational fluid dynamics (CFD) has become a valuable tool for investigating hemodynamics in cerebral aneurysms.

CFD provides flow-related quantities, which have been shown to have a potential impact on aneurysm growth and risk of rupture.

However, the adoption of CFD tools in clinical settings is currently limited by the high computational cost and the engineering expertise required for employing these tools, e.g., for mesh generation, appropriate choice of spatial and temporal resolution, and of boundary conditions.

Herein, we address these challenges by introducing a practical and robust methodology, focusing on computational performance and minimizing user interaction through automated parameter selection.

We propose a fully automated pipeline that covers the steps from a patient-specific anatomical model to results, based on a fast, graphics processing unit- (GPU-) accelerated CFD solver and a parameter selection methodology.

We use a reduced order model to compute the initial estimates of the spatial and temporal resolutions and an iterative approach that further adjusts the resolution during the simulation without user interaction.

The pipeline and the solver are validated based on previously published results, and by comparing the results obtained for 20 cerebral aneurysm cases with those generated by a state-of-the-art commercial solver (Ansys CFX, Canonsburg PA).

The automatically selected spatial and temporal resolutions lead to results which closely agree with the state-of-the-art, with an average relative difference of only 2%.

Due to the GPU-based parallelization, simulations are computationally efficient, with a median computation time of 40 minutes per simulation.

American Psychological Association (APA)

Nita, Cosmin-Ioan& Suzuki, Takashi& Itu, L. M.& Mihalef, Viorel& Takao, H.& Murayama, Y.…[et al.]. 2020. An Automated Workflow for Hemodynamic Computations in Cerebral Aneurysms. Computational and Mathematical Methods in Medicine،Vol. 2020, no. 2020, pp.1-20.
https://search.emarefa.net/detail/BIM-1139497

Modern Language Association (MLA)

Nita, Cosmin-Ioan…[et al.]. An Automated Workflow for Hemodynamic Computations in Cerebral Aneurysms. Computational and Mathematical Methods in Medicine No. 2020 (2020), pp.1-20.
https://search.emarefa.net/detail/BIM-1139497

American Medical Association (AMA)

Nita, Cosmin-Ioan& Suzuki, Takashi& Itu, L. M.& Mihalef, Viorel& Takao, H.& Murayama, Y.…[et al.]. An Automated Workflow for Hemodynamic Computations in Cerebral Aneurysms. Computational and Mathematical Methods in Medicine. 2020. Vol. 2020, no. 2020, pp.1-20.
https://search.emarefa.net/detail/BIM-1139497

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1139497