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An experience-based multi-lead decision model for electrocardiogram wave boundary detection

机译:基于经验的心电图波边界检测多线索决策模型

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An experience-based multi-lead (12 standard leads) decision model was presented for locating the ECG wave boundary. After getting 12 single-lead ECG boundary results from any single-lead detector (used threshold based method), the model first applied a data selecting and alignment algorithm to filter invalid records in each beat. Then valid data were assigned to different weights in each lead for calculating a final location according to the rule approved by physicians. This method has been assessed in our ECG database. The total accuracy was 92.4% and mean deviation was 4.2ms between the standard marking and our algorithm's marking. The software with this method has been applied in remote medical center, in which a good feedback was given through the test of a large amount of actual data.
机译:提出了一种基于经验的多导联(12条标准导联)决策模型,用于定位ECG波边界。从任何单导联检测器(使用基于阈值的方法)获得12个单导联ECG边界结果后,该模型首先应用数据选择和对齐算法来过滤每个拍中的无效记录。然后,根据医师批准的规则,将有效数据分配给每根导线中的不同权重,以计算最终位置。该方法已在我们的ECG数据库中进行了评估。标准标记与我们算法的标记之间的总准确度为92.4%,平均偏差为4.2ms。这种方法的软件已经在远程医疗中心使用,通过对大量实际数据的测试得到了很好的反馈。

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