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Automatic detection of ECG electrode misplacement: A tale of two algorithms

机译:自动检测心电图电极错位:两种算法的故事

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摘要

Artifacts in an electrocardiogram (ECG) due to electrode misplacement can lead to wrong diagnoses. Various computer methods have been developed for automatic detection of electrode misplacement. Here we reviewed and compared the performance of two algorithms with the highest accuracies on several databases from PhysioNet. These algorithms were implemented into four models. For clean ECG records with clearly distinguishable waves, the best model produced excellent accuracies (> = 98.4%) for all misplacements except the LA/LL interchange (87.4%). However, the accuracies were significantly lower for records with noise and arrhythmias. Moreover, when the algorithms were tested on a database that was independent from the training database, the accuracies may be poor. For the worst scenario, the best accuracies for different types of misplacements ranged from 36.1% to 78.4%. A large number of ECGs of various qualities and pathological conditions are collected every day. To improve the quality of health care, the results of this paper call for more robust and accurate algorithms for automatic detection of electrode misplacement, which should be developed and tested using a database of extensive ECG records.
机译:由于电极放错而导致的心电图(ECG)伪像会导致错误的诊断。已经开发出各种计算机方法来自动检测电极错位。在这里,我们回顾并比较了PhysioNet上几个数据库中精度最高的两种算法的性能。这些算法被实现为四个模型。对于波形清晰可辨的干净ECG记录,最佳模型对所有错位产生了极好的准确性(> = 98.4%),除了LA / LL互换(87.4%)。但是,对于有噪音和心律不齐的记录,准确率要低得多。此外,当在独立于训练数据库的数据库上测试算法时,准确性可能很差。在最坏的情况下,针对不同类型的放错位置的最佳精度范围为36.1%至78.4%。每天收集大量各种质量和病理状况的心电图。为了提高卫生保健的质量,本文的结果要求使用更健壮和准确的算法来自动检测电极错位,应使用广泛的ECG记录数据库进行开发和测试。

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