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Using Fixed Point Arithmetic for Cardiac Pathologies Detection Based on Electrocardiogram

机译:基于心电图的心脏病理检测使用定点算法

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This paper proposes to implement an automatic detection system for the heart diseases over a Field Programmable Gate Array (FPGA). The system is able to process, analyze and classify the cardiac pathologies in real time from electrocardiogram (ECG). Firstly, the pulses of the ECG signals have been extracted from electrocardiographic registers. After that, digital signal processing, normalization and heart pulse features extraction algorithms have been used. These algorithms principally are based on Digital Wavelet Transform (DWT) techniques, and Principal Component Analysis (PCA). Finally, cardiac pulse detection and classification algorithms have been implemented in an Artificial Neural Network (ANN). In this way, the subjectivity problem in the heart disease diagnosis is solved, and the task of heart specialist is facilitated.
机译:本文建议在现场可编程门阵列(FPGA)上实现心脏病的自动检测系统。系统能够从心电图(ECG)实时处理,分析和分类心脏病理学。首先,已经从心电图寄存器提取了ECG信号的脉冲。之后,已经使用了数字信号处理,归一化和心脉冲特征提取算法。这些算法主要基于数字小波变换(DWT)技术和主成分分析(PCA)。最后,在人工神经网络(ANN)中已经实现了心脏脉冲检测和分类算法。以这种方式,促进了心脏病诊断中的主体性问题,促进了心脏专家的任务。

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