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AUTOMATIC RECOGNITION AND CLASSIFICATION METHOD FOR ELECTROCARDIOGRAM HEARTBEAT BASED ON ARTIFICIAL INTELLIGENCE

机译:基于人工智能的心电图心律自动识别与分类方法

摘要

An automatic recognition and classification method for electrocardiogram heartbeat based on artificial intelligence, comprising: processing a received original electrocardiogram digital signal to obtain heartbeat time sequence data and lead heartbeat data (110); cutting the lead heartbeat data according to the heartbeat time sequence data to generate lead heartbeat analysis data (120); performing data combination on the lead heartbeat analysis data to obtain a one-dimensional heartbeat analysis array (130); performing data dimension amplification and conversion according to the one-dimensional heartbeat analysis array to obtain four-dimensional tensor data (140); and inputting the four-dimensional tensor data to a trained LepuEcgCatNet heartbeat classification model, to obtain heartbeat classification information (150). The method overcomes the defect that the conventional method only depends on single lead independent analysis for result summary statistics and thus classification errors are more easily obtained, and the accuracy of the electrocardiogram heartbeat classification is greatly improved.
机译:一种基于人工智能的心电图心跳自动识别和分类方法,包括:处理接收到的原始心电图数字信号,获取心跳时间序列数据和超前心跳数据(110);根据所述心跳时间序列数据,切割所述主心跳数据,以生成主心跳分析数据(120);对前导心跳分析数据进行数据组合,以获得一维心跳分析阵列(130);根据一维心跳分析阵列进行数据维放大和转换,得到二维张量数据(140);并将所述三维张量数据输入到训练好的LepuEcgCatNet心跳分类模型中,以获得心跳分类信息(150)。该方法克服了传统方法仅依靠单引线独立分析进行结果汇总统计的缺点,从而更容易获得分类误差,大大提高了心电图心跳分类的准确性。

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