Role of AI in Cardiovascular Health Care; a Brief Overview

IF 2.1
Hafiz Khawar Hussain, Aftab Tariq, Ahmad Yousaf Gill
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引用次数: 2

Abstract

Introduction: In the field of cardiovascular health, machine learning and artificial intelligence (AI) have become effective tools with potential applications ranging from disease detection and diagnosis to individualized treatment planning and decision making. The purpose of this study is to identify and analyze the role of AI in cardiovascular health care. Method: The methodology of this review paper involved an extensive literature review of the existing research on the topic of AI in cardiovascular health care. Result: Medical imaging is very important in the diagnosis and treatment of many diseases, but the interpretation of medical images is often time-consuming and subjective. Artificial intelligence (AI) algorithms, such as supervised and unsupervised learning, have been developed to assist in the analysis and interpretation of data from medical imaging. Convolutional neural networks (CNNs) and support vector machines (SVM) are the two most frequently used AI algorithms in medical image analysis. Conclusion: Artificial intelligence (AI) and machine learning in cardiovascular healthcare have great potential to improve patient outcomes and lower costs. However, there are still some hurdles that need to be overcome such as integration with clinical workflows, model validation and generalization, and privacy and security issues related to patient data. To overcome this, collaboration between doctors, researchers and industrial partners is needed. This technology has a bright and promising future with continuous investment in research and development.
人工智能在心血管卫生保健中的作用简介
导读:在心血管健康领域,机器学习和人工智能(AI)已经成为有效的工具,从疾病检测和诊断到个性化治疗计划和决策都有潜在的应用。本研究的目的是识别和分析人工智能在心血管卫生保健中的作用。方法:这篇综述论文的方法包括对人工智能在心血管卫生保健领域的现有研究进行广泛的文献综述。结果:医学影像在许多疾病的诊断和治疗中发挥着重要作用,但医学影像的解读往往耗时且主观。人工智能(AI)算法,如监督和无监督学习,已经被开发出来,以协助分析和解释医学成像数据。卷积神经网络(cnn)和支持向量机(SVM)是医学图像分析中最常用的两种人工智能算法。结论:人工智能(AI)和机器学习在心血管医疗保健中具有改善患者预后和降低成本的巨大潜力。然而,仍有一些障碍需要克服,如与临床工作流程的集成,模型验证和泛化,以及与患者数据相关的隐私和安全问题。为了克服这一点,需要医生、研究人员和工业伙伴之间的合作。随着研究和开发的不断投入,该技术具有光明的前景。
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来源期刊
World Journal of Science Technology and Sustainable Development
World Journal of Science Technology and Sustainable Development GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY-
CiteScore
5.50
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