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FPGA-based system for artificial neural network arrhythmia classification

机译:基于FPGA的人工神经网络心律失常分类系统

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摘要

The automatic detection and cardiac classification are essential tasks for real-time cardiac diseases diagnosis. In this context, this paper describes a field programmable gates array (FPGA) implementation of arrhythmia recognition system, based on artificial neural network. Firstly, we have developed an optimized software-based medical diagnostic approach, capable of defining the best electrocardiogram (ECG) signal classes. The main advantage of this approach is the significant features minimization, compared to the existing researches, which leads to minimize the FPGA prototype size and saving energy consumption. Secondly, to provide a continuous and mobile arrhythmia monitoring system for patients, we have performed a hardware implementation. The FPGA has been referred due to their easy testing and quick implementation. The optimized approach implementation has been designed on the Nexys4 Artix7 evaluation kit using the Xilinx System Generator for DSP. In order to evaluate the performance of our proposal system, the classification performances of proposed FPGA fixed point have been compared to those obtained from the MATLAB floating point. The proposed architecture is validated on FPGA to be a customized mobile ECG classifier for long-term real-time monitoring of patients.
机译:自动检测和心脏分类是实时心脏病诊断的基本任务。在这种情况下,本文介绍了基于人工神经网络的心律失常识别系统的现场可编程门阵列(FPGA)。首先,我们开发了一种优化的基于软件的医学诊断方法,能够定义最佳心电图(ECG)信号类。与现有的研究相比,这种方法的主要优点是最小化的最小化功能,这导致最小化FPGA原型尺寸和节省能耗。其次,为患者提供连续和移动的心律失常监测系统,我们已经进行了硬件实现。由于其简单的测试和快速实现,FPGA已被提及。使用Xilinx系统发生器用于DSP,设计了在Nexys4 Artix7评估套件上设计了优化的方法。为了评估我们的提案系统的性能,将所提出的FPGA定点的分类性能与来自Matlab浮点所获得的那些进行比较。拟议的架构在FPGA上验证,是定制移动ECG分类器,用于长期对患者的实时监测。

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