Recent developments in modeling, imaging, and monitoring of cardiovascular diseases using machine learning

被引:0
|
作者
Hamed Moradi
Akram Al-Hourani
Gianmarco Concilia
Farnaz Khoshmanesh
Farhad R. Nezami
Scott Needham
Sara Baratchi
Khashayar Khoshmanesh
机构
[1] Eindhoven University of Technology,Department of Biomedical Engineering
[2] RMIT University,School of Engineering
[3] La Trobe University,School of Allied Health, Human Services & Sport
[4] Harvard Medical School,Division of Thoracic and Cardiac Surgery, Brigham and Women’s Hospital
[5] Leading Technology Group,School of Health and Biomedical Sciences
[6] RMIT University,undefined
来源
Biophysical Reviews | 2023年 / 15卷
关键词
Cardiovascular diseases; Computational fluid dynamics; Flow imaging; Wearable sensors; Machine learning;
D O I
暂无
中图分类号
学科分类号
摘要
Cardiovascular diseases are the leading cause of mortality, morbidity, and hospitalization around the world. Recent technological advances have facilitated analyzing, visualizing, and monitoring cardiovascular diseases using emerging computational fluid dynamics, blood flow imaging, and wearable sensing technologies. Yet, computational cost, limited spatiotemporal resolution, and obstacles for thorough data analysis have hindered the utility of such techniques to curb cardiovascular diseases. We herein discuss how leveraging machine learning techniques, and in particular deep learning methods, could overcome these limitations and offer promise for translation. We discuss the remarkable capacity of recently developed machine learning techniques to accelerate flow modeling, enhance the resolution while reduce the noise and scanning time of current blood flow imaging techniques, and accurate detection of cardiovascular diseases using a plethora of data collected by wearable sensors.
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页码:19 / 33
页数:14
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