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ECG based algorithm for detecting ventricular arrhythmia and atrial fibrillation

机译:基于心电图的心律失常和房颤检测算法

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As per the report of statistics sudden cardiac deaths affects about 30 percent of the population all around the world. In most cases these deaths are due to arrhythmias including ventricular tachycardia or ventricular fibrillation and atrial fibrillation. Ventricular arrhythmia is an abnormal ECG rhythm that occurs in the ventricles of the heart and is responsible for 75 to 85 percent of sudden deaths in persons with heart problems unless treated within seconds. Similarly, atrial fibrillation occurs due to abnormal ECG rhythm occurring in the upper chambers of the heart and causes the heart to quiver. These deaths occur due to hypertension and other cardiac related issues. Sudden deaths due to arrhythmia also occur in individuals who do not have high risk profiles. When a person is diagnosed with arrhythmia, patient is left with only few seconds to die. Long term ECG monitoring is the standard criterion for the diagnosis of arrhythmia, which is time consuming. So, detection and analysis of arrhythmia is vital as it has become one of the major causes of cardiac deaths. The project illustrates a simple algorithm for the detection of arrhythmia using a unique set of ECG features. Databases of the ECG signal recordings from the MIT physionet ATM, sampled at 250 Hz were used to evaluate the performance of algorithm. The algorithm presented in this paper provides a computationally efficient solution for the detection of ventricular arrhythmia and atrial fibrillation. This makes it ideal for a wide range of machine diagnosis application in biomedical field.
机译:根据统计报告,心脏猝死影响了全世界约30%的人口。在大多数情况下,这些死亡归因于心律不齐,包括室性心动过速或室性纤颤和心房纤颤。室性心律失常是一种异常的心电图节律,发生在心脏的心室,除非有在几秒钟之内的治疗,否则它会导致心脏病患者突然死亡的75%至85%。同样,心房颤动是由于在心脏上腔室中发生异常的ECG节律而引起的,并导致心脏颤动。这些死亡的发生是由于高血压和其他与心脏有关的问题。心律失常导致的猝死也发生在没有高风险特征的个体中。当一个人被诊断出心律不齐时,病人只剩下几秒钟就死了。长期的ECG监测是诊断心律不齐的标准标准,这很耗时。因此,心律失常的检测和分析至关重要,因为它已成为导致心脏死亡的主要原因之一。该项目说明了使用一套独特的ECG功能检测心律不齐的简单算法。来自MIT physionet ATM的ECG信号记录的数据库以250 Hz采样,用于评估算法的性能。本文提出的算法为检测室性心律不齐和房颤提供了一种计算有效的解决方案。这使其成为生物医学领域各种机器诊断应用的理想选择。

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