Abstract:
Computer simulations based on the finite element method represent powerful tools for modeling blood flow through arteries. However, due to its computational complexity, t...Show MoreMetadata
Abstract:
Computer simulations based on the finite element method represent powerful tools for modeling blood flow through arteries. However, due to its computational complexity, this approach may be inappropriate when results are needed quickly. In order to reduce computational time, in this paper, we proposed an alternative machine learning based approach for calculation of wall shear stress (WSS) distribution, which may play an important role in mechanisms related to initiation and development of atherosclerosis. In order to capture relationships between geometric parameters, blood density, dynamic viscosity and velocity, and WSS distribution of geometrically parameterized abdominal aortic aneurysm (AAA) and carotid bifurcation models, we proposed multivariate linear regression, multilayer perceptron neural network and Gaussian conditional random fields (GCRF). Results obtained in this paper show that machine learning approaches can successfully predict WSS distribution at different cardiac cycle time points. Even though all proposed methods showed high potential for WSS prediction, GCRF achieved the highest coefficient of determination (0.930-0.948 for AAA model and 0.946-0.954 for carotid bifurcation model) demonstrating benefits of accounting for spatial correlation. The proposed approach can be used as an alternative method for real time calculation of WSS distribution.
Published in: IEEE Journal of Biomedical and Health Informatics ( Volume: 22, Issue: 2, March 2018)
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- IEEE Keywords
- Index Terms
- Machine Learning ,
- Machine Learning Approaches ,
- Abdominal Aortic Aneurysm ,
- Carotid Bifurcation ,
- Aneurysm Model ,
- Model Of Aortic Aneurysm ,
- Bifurcation Model ,
- Neural Network ,
- Computer Simulations ,
- Finite Element Method ,
- Geometric Parameters ,
- Multilayer Perceptron ,
- Cardiac Cycle ,
- Dynamic Viscosity ,
- Wall Shear Stress ,
- Conditional Random Field ,
- Multilayer Perceptron Neural Network ,
- Shear Stress Distribution ,
- Blood Density ,
- Time Step ,
- Multilayer Perceptron Model ,
- Multivariable Linear Regression Models ,
- Geometric Changes ,
- Quadratic Function ,
- Peak Systolic Velocity ,
- Training Examples ,
- Predictive Distribution ,
- Output Variables ,
- Structure Learning ,
- Multiple Graphs
- Author Keywords
- MeSH Terms
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Machine Learning ,
- Machine Learning Approaches ,
- Abdominal Aortic Aneurysm ,
- Carotid Bifurcation ,
- Aneurysm Model ,
- Model Of Aortic Aneurysm ,
- Bifurcation Model ,
- Neural Network ,
- Computer Simulations ,
- Finite Element Method ,
- Geometric Parameters ,
- Multilayer Perceptron ,
- Cardiac Cycle ,
- Dynamic Viscosity ,
- Wall Shear Stress ,
- Conditional Random Field ,
- Multilayer Perceptron Neural Network ,
- Shear Stress Distribution ,
- Blood Density ,
- Time Step ,
- Multilayer Perceptron Model ,
- Multivariable Linear Regression Models ,
- Geometric Changes ,
- Quadratic Function ,
- Peak Systolic Velocity ,
- Training Examples ,
- Predictive Distribution ,
- Output Variables ,
- Structure Learning ,
- Multiple Graphs
- Author Keywords
- MeSH Terms