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Extraction of morphological QRS-based biomarkers in hypertrophic cardiomyopathy for risk stratification using L1 regularized logistic regression

机译:使用L1正则Logistic回归提取肥厚型心肌病中基于形态QRS的生物标志物以进行风险分层

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Hypertrophic cardiomyopathy (HCM) is an inherited cardiac disease characterized by an unexplained thickening of the heart ventricles. It is the first cause of sudden cardiac death in young adults. No reliable biomarkers for risk assessment have been presented so far, but the electrocardiograms of HCM patients are often abnormal due to structural and electrical abnormalities. The goal of our study was to extract morphological QRS biomarkers in order to discriminate between HCM patients and control patients by analyzing fifty 12-lead Holter recordings (29 HCM ??? 21 control). Morphological features such as QRS width or slopes from the QRS complex directly and the coefficients of the first four Hermite transform basis were extracted. Classification was then performed using those features in an L1 regularized logistic regression algorithm. Classification between control and HCM patients reached 95.7% of accuracy (sensitivity of 94.96% for HCM and specificity of 96.90%) using only two main features: the percentage of negative regions of the QRS complex with respect to the isoelectric level and the 3rd coefficient of its Hermite fitting showing interesting connections to cardiac electrophysiology.
机译:肥厚型心肌病(HCM)是一种遗传性心脏病,其特征是心室无法解释的增厚。它是年轻人猝死的首个原因。迄今为止,尚无可靠的生物标志物用于风险评估,但由于结构和电学异常,HCM患者的心电图通常异常。我们研究的目的是通过分析五十个12导联动态心电图记录(29 HCM ??? 21对照)来提取形态学QRS生物标志物,以区分HCM患者和对照患者。直接从QRS复杂度中提取QRS宽度或坡度等形态特征,以及前四个Hermite变换基础的系数。然后使用L1正则逻辑回归算法中的那些功能进行分类。对照和HCM患者之间的分类仅使用以下两个主要特征即可达到准确率的95.7%(对HCM的敏感性为94.96%,对特异性为96.90%):QRS复合体的负区域相对于等电点的百分比和3rd系数。 Hermite配件显示出与心脏电生理学的有趣联系。

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