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首页> 外文期刊>Medical informatics and the Internet in medicine >Use of an artificial neural network to differentiate between ECGs with IRBBB patterns of atrial septal defect and healthy subjects.
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Use of an artificial neural network to differentiate between ECGs with IRBBB patterns of atrial septal defect and healthy subjects.

机译:使用人工神经网络区分具有房间隔缺损的IRBBB模式的ECG和健康受试者。

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摘要

Atrial septal defect (ASD) is one of the most commonly recognized congenital cardiac anomalies in adults, but its diagnosis is easily missed because about half of the patients are asymptomatic early in life. Although an electrocardiogram (ECC) diagnosis with an incomplete right bundle branch block (IRBBB) pattern is of major importance for this disease, an RSR' complex similar to an IRBBB pattern is also found in some healthy individuals. A feed-forward artificial neural network was constructed to distinguish between ASD and healthy subjects using 12-lead ECGs with IRBBB. A total of 106 clinically validated subjects, including 58 with ASD and 48 healthy subjects were used in this study. QRS and T wave measurements from I, II, and all precordial leads were used as the input parameters to a back propagation network. The leave-one-out method revealed that in the test data (106 cases), the overall accuracy, sensitivity and specificity of the artificial neural network were 91.5, 91.4, and 91.7%, respectively. This study demonstrates that the neural network technique may offer higher accuracy than computerized ECG diagnosis of IRBBB from the viewpoint of ASD.
机译:房间隔缺损(ASD)是成人中最常见的先天性心脏异常之一,但由于大约一半的患者在生命早期无症状,因此其诊断很容易被漏诊。尽管对于这种疾病,具有不完全右束支传导阻滞(IRBBB)模式的心电图(ECC)诊断非常重要,但在一些健康个体中也发现了类似于IRBBB模式的RSR'复合体。使用带有IRBBB的12导联心电图构建前馈人工神经网络,以区分ASD和健康受试者。这项研究总共使用了106名经过临床验证的受试者,包括58名ASD和48名健康受试者。来自I,II和所有心前导联的QRS和T波测量结果被用作反向传播网络的输入参数。留一法显示,在测试数据(106例)中,人工神经网络的总体准确性,敏感性和特异性分别为91.5、91.4和91.7%。这项研究表明,从ASD的角度来看,神经网络技术可能比IRBBB的计算机化ECG诊断提供更高的准确性。

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