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Noise-Resistant Algorithm for Sorting Cardio Complexes for the Task of Analyzing Statistical Characteristics of ECG

机译:用于心电图统计特征分析的抗杂物心脏复合物分类算法

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According to the WHO, cardiovascular diseases are the leading cause of death worldwide, so an accurate and timely diagnosis of cardiovascular diseases is an important task. One of the most common and effective methods for diagnosing CVD is to record an electrocardiogram using Holter monitoring. In order to significantly reduce the time required to decrypt the recording of ECS, cardiologists need special programs for automated analysis of the electrocardiogram. This is especially important for the long-term monitoring task. The program for the automated analysis of pacemakers should perform the clustering of cardiac complexes, thus dividing the electrocardiogram into groups of individual cardiac complexes. Only reference cardiocomplexes obtained by statistical averaging from each such group are subjected to further analysis. When registering an electrocardiogram, interference of various physical origins arises, artifacts that significantly complicate the analysis of ECS, therefore, automated analysis programs must also carry out preliminary processing of the electrocardiogram.
机译:据世界卫生组织表示,心血管疾病是全世界死亡的主要原因,因此准确,及时地诊断心血管疾病是一项重要的任务。诊断CVD的最常见,最有效的方法之一是使用动态心电图监测记录心电图。为了显着减少解密ECS记录所需的时间,心脏病专家需要特殊的程序来自动分析心电图。这对于长期监控任务尤为重要。用于起搏器自动分析的程序应执行心脏复合体的聚类,从而将心电图分为单个心脏复合体的组。仅对通过统计平均从每个此类组获得的参考心脏复合物进行进一步分析。记录心电图时,会产生各种物理来源的干扰,从而使ECS分析变得更加复杂,因此,自动分析程序还必须对心电图进行初步处理。

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