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Improving Twin Support Vector Machine Based on Hybrid Swarm Optimizer for Heartbeat Classification

机译:基于混合群优化器的Ceartbeat分类改进双胞胎支持向量机

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The computer-aided diagnosis system is used to reduce the high mortality rate among heart patients through detecting cardiac diseases at an early stage. Since the process of detecting the cardiac heartbeat is a hard task because of the human eye cannot be distinguished between the variations in electrocardiogram (ECG) signals due to they are very small. There are several machine learning approaches are applied to improve the performance of detecting the heartbeats, however, these methods suffer from some limitations such as high time computational and slow convergence. To avoid these limitations, this paper proposed an ECG heartbeat classification approach, called Swarm-TWSVM, that combined twin support vector machines (TWSVMs) with the hybrid between the particle swarm optimization with gravitational search algorithm (PSOGSA). Also, the empirical mode decomposition (EMD) has been applied for the ECG noise removing, and feature extraction, then PSOGSA was used to find the optimal parameters of TWSVM to improve the classification process. The experiments were performed using the MIT-BIH arrhythmia database and results show that the Swarm- TWSVM gives better accuracy than TWSVM 99.44 and 85.87%, respectively.
机译:计算机辅助诊断系统用于通过在早期检测心脏病中降低心脏病患者的高死亡率。由于检测心脏心跳的过程是由于人眼不能区分由于它们的心电图(ECG)信号的变化而难以实现。应用了几种机器学习方法以提高检测心跳的性能,然而,这些方法遭受了一些限制,例如高时间计算和缓慢的收敛。为避免这些限制,本文提出了一种被称为Swarm-T​​WSVM的ECG心跳分类方法,该方法将双级支持向量机(TWSVMS)与粒子群优化与引力搜索算法(PSOGSA)之间的混合。此外,经验模式分解(EMD)已应用于ECG噪声去除,并且特征提取,然后使用PSOGSA来查找TWSVM的最佳参数以改善分类过程。使用MIT-BIH心律失常数据库进行实验,结果表明,群TWSVM分别优于TWSVM 99.44和85.87%。

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