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An algorithm for assessment of quality of ECGs acquired via mobile telephones

机译:一种评估通过移动电话获取的心电图质量的算法

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For the application of acquiring ECGs from mobile telephones by unskilled users it would be beneficial if the mobile device could assess ECG quality and inform the user if the quality was acceptable. Using the PhysioNet/Computing in Cardiology Challenge 2011 dataset we identified several ECG features that were commonly observed in the training set ‘unacceptable’ category for algorithmic development: flat baseline (FB), saturation (SA), baseline drift (BD), low amplitude (LA), high amplitude (HA) and steep slope (SS). For the training set with each feature detection applied separately the following scores were achieved: FB 76.2%, SA 80.9%, BD 61.3%, LA 75.6%, HA 74.1% and SS 77.5%. With all features combined a score of 91.4% was achieved. For the test set the algorithm classified 181 records as unacceptable and 319 records as acceptable and the score was 85.7%.
机译:对于非熟练用户从移动电话获取ECG的应用,如果移动设备可以评估ECG质量并通知用户质量是否合格,则将是有益的。使用PhysioNet / Computing in Cardiology Challenge 2011数据集,我们确定了在算法开发的训练集“不可接受”类别中通常观察到的几种ECG功能:平坦基线(FB),饱和度(SA),基线漂移(BD),低振幅(LA),高振幅(HA)和陡坡(SS)。对于分别应用每个特征检测的训练集,获得了以下分数:FB 76.2%,SA 80.9%,BD 61.3%,LA 75.6%,HA 74.1%和SS 77.5%。结合所有功能,得分达到91.4%。对于测试集,该算法将181条记录分类为不可接受,将319条记录分类为可接受,得分为85.7%。

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