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Comparison of acceleration python library on design and implementation of QRS detection module from ECG heart signal

机译:加速Python库对ECG心脏信号QRS检测模块的设计与实现的比较

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Electrocardiogram(ECG)signal is one of importance signal from our body that sourced from heart.There are many benefits that can be obtained from ecg signals,for example can determine whether sleepy/stress or not,and several diseasses like arrhytmia,hypertension,heart failure,etc.In this research,we created sub-module for extraction feature for ecg signal using GPU Acceleration,but in this research only emphasis on QRS detection and peak detection from ecg signal.The input will be ecg Signals and the output will be array of peak in every row.There have been various research trying to extract or detect QRS and peak based on Pan-Tomkins Algorithm,but this research will make use python and will compare the acceleration using some library.The flow comprise five main step,(1)load ecg signal,(2)filtered ecg,(3)derivative from filtered ecg,(4)squaring from derivative ecg,(5)convolution squaring ecg,and(6)peak detection using Fiducial Mark.The overall module has been succesfully implemented and compared in python.The result show that computation using numpy is still better and faster for small array data.The Output of peak of array can be used to the next module.
机译:心电图(ECG)信号是来自心灵的身体的重要信号之一。从ECG信号中可以获得许多益处,例如可以确定困倦/应力是否,以及像Arrhytmia,高血压,心脏一样的几种污染在本研究中,我们创建了使用GPU加速器的ECG信号的提取功能的子模块,但在本研究中强调了ECG信号的QRS检测和峰值检测。输入将是ECG信号,输出将是ECG信号和输出每一行中的峰值数组。在尝试基于Pan-Tomkins算法的QRS和峰值提取或检测QRS和峰值的各种研究,但本研究将使使用Python并将使用某些库进行比较。流量包括五个主步骤, (1)加载ECG信号,(2)从过滤的ECG,(4)从衍生ECG,(5)卷积平方ECG,(6)使用基准标记的峰值检测中滤除ECG,(3)衍生物。整体模块具有已成功实施和在Python中比较。结果表明,对于小阵列数据,使用NUMPY的计算仍然更好,更快。阵列峰值的输出可用于下一个模块。

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