A novel approach for estimation of coronary artery calcium score class using ANN and body mass index, age and gender data

H. Yaşar, S. Serhatlioglu, Uğurhan Kutbay, F. Hardalaç
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引用次数: 2

Abstract

Cardiovascular diseases group is the one that causes most death in the world. There is a strong association between coronary artery disease and coronary artery calcium score. Therefore; coronary artery calcium score and class are important for the determination of risk of heart attack. In this study, a new automated assessment system is proposed to estimate the Agatston coronary artery calcium score class without need for measurement. In the estimation study performed under two different titles on the basis of three classes and five classes for Agatston coronary artery calcium score; ANN, body mass index, age and gender were used. In the study, the data collected from a total of 260 patients (105 female, 155 male), ages ranging between 29 and 77 years (an average of 45.56 years), were used. As a result of the study, it was seen that a successful estimation rate of 67.69% was reached in estimating the class of Agatston coronary artery calcium score for the patients correctly when an estimation was made with five classes were taken as basis. In the study, a rate of success of 91.15% was achieved in the estimation based on three classes.
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一种利用神经网络和身体质量指数、年龄和性别数据估计冠状动脉钙评分等级的新方法
心血管疾病是世界上导致死亡人数最多的疾病之一。冠状动脉疾病与冠状动脉钙评分有很强的相关性。因此;冠状动脉钙化评分和分级对于确定心脏病发作的风险很重要。在本研究中,提出了一种新的自动评估系统,无需测量即可估计Agatston冠状动脉钙评分等级。在基于Agatston冠状动脉钙评分的3级和5级的两种不同标题下进行的评估研究;采用人工神经网络、体重指数、年龄和性别。本研究共收集260例患者的数据,其中女性105例,男性155例,年龄29 ~ 77岁,平均45.56岁。研究结果显示,在以5个等级为基础进行估计时,正确估计患者Agatston冠状动脉钙评分等级的成功率为67.69%。在本研究中,基于三类的估计成功率为91.15%。
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