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Effective Arrhythmia Detection using Majority Voting

机译:使用多数投票进行有效的心律失常检测

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Heart disease is the second leading cause of death in Singapore as reported by the Ministry of Health, Singapore. Research shows that stress and mental anxiety are the main causes of heart diseases. The risk of stroke is five times greater in people with atrial fibrillation, which makes the latter one of the leading cause of death in Singapore. This paper deals with classification of the patients into various conditions of arrhythmia. Each time a patient visits a hospital, the patient may get different opinions from different doctors about the same problem. There is no data-driven or evidential decision-making process in the sphere of health. Hence, a novel approach is proposed to help the doctors arrive at a proper conclusion about the patient's condition using various machine learning algorithms and ensemble techniques for classifying the patient condition.
机译:根据新加坡卫生部的报告,心脏病是新加坡第二大死亡原因。研究表明,压力和精神焦虑是心脏病的主要原因。房颤患者中风的风险高出五倍,这使后者成为新加坡主要的死亡原因之一。本文将患者分类为各种心律失常情况。每次患者到医院就诊时,对于同一问题,患者可能会从不同的医生那里获得不同的意见。在卫生领域,没有数据驱动或证据确凿的决策过程。因此,提出了一种新颖的方法来帮助医生使用各种机器学习算法和集成技术对患者状况进行分类,以得出关于患者状况的正确结论。

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