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Detection of Atrial Fibrillation Disease Based on Electrocardiogram Signal Classification Using RR Interval and K-Nearest Neighbor

机译:基于RR间隔和K近邻心电图信号分类的心房颤动检测

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Atrial Fibrillation (AF) categorized as one kind of arrhythmia that mostly found on a daily basis. It is indicated by irregular heart beat in the heart's electrical system from the atrium into the ventricle. A person who has never had a history of heart disease even gets possibility suffering from AF. Risks caused by AF, namely the possibility of stroke, heart failure, and death. For someone who already has symptoms of AF should immediately examine one of them by using an electrocardiogram (EKG). Due to the presence of early detection can reduce the number of percentage of AF population, and the prognosis of AF disease is also preferable. There are three stages in this research; they are pre-processing as a process of uniforming data dimension, feature extraction, and K-NN classification. Feature extraction applied by comparing the RR interval of AF's signal and the normal one. The best performance result of AF detection based on the accuracy of the overall scheme is k = 1 with an average accuracy at 91.75% and the highest accuracy, sensitifity, and specificity level at 95.45%, 91.67%, and 100% with proportion data at 60:40 percent.
机译:心房颤动(AF)被归类为一种心律失常,大多数情况下每天都会发现。从心房到心室的心脏电系统中不规则的心跳表明了这一点。从未有心脏病史的人甚至可能患有AF。由房颤引起的风险,即中风,心力衰竭和死亡的可能性。对于已经患有房颤症状的人,应立即使用心电图(EKG)检查其中一种。由于早期发现的存在可以减少AF人群的百分比,并且AF疾病的预后也是优选的。本研究分为三个阶段。它们是作为统一数据维,特征提取和K-NN分类的过程而进行的预处理。通过比较AF信号的RR间隔和正常信号的RR间隔进行特征提取。根据整体方案的准确性,AF检测的最佳性能结果是k = 1,平均准确度为91.75%,最高准确度,灵敏度和特异度水平为95.45%,91.67%和100%,比例数据为60:40%。

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