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Standard ECG lead I prospective estimation study from far-field bipolar leads on the left upper arm: A neural network approach

机译:来自左上臂远场双极导线的标准ECG导线I前瞻性评估研究:一种神经网络方法

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In this study, the feasibility of interpreting heart rhythms from far-field bipolar ECG arm-band lead recordings on the left-upper-arm (LUA), is evaluated in a clinical multichannel arm-ECG mapping database (N = 153 subjects) for the prospective development of long-term heart rhythm monitoring from comfortable arm wearable devices. A preliminary multi variable linear regression analysis on ECG chest Lead I from 10 selected far-field bipolar leads along the left arm, indicated that 3 of them in the LUA were relevant and worth evaluating in more detail from a heart rhythm information perspective.To derive a good and effective estimation process, a time series non-linear regression point estimator, using an artificial neural network with 2 lags was investigated, showing a correlation coefficient of up to 0.969 for a single subject. Then, a vector approach was adopted for the whole LUA database, aiming to develop a subject independent estimation process of the P-QRS-T waveform interval and its heart rhythm attributes in the standard chest Lead I. In the same study, the first 96 coefficients, of the Discrete Cosine Transform on the P-QRS-T interval were used as a means for reducing the dimensionality of the input space, with a loss of just 0.1% in power, and reducing the dimensionality to just 5% of the original size. The trained ANN for ECG Lead I estimation from one upper arm Lead-1 showed a correlation coefficient above 80% on a beat-to-beat basis, an improvement on all but 1.34% of the beats estimated for a typical train/test partition of the LUA database. The non-triviality of the results was tested with random and intentional true negatives. Information theory analytics revealed that there is an estimated information of 1.6 bits/beat between LUA armband bipolar leads and the standard Lead I. (C) 2019 The Authors. Published by Elsevier Ltd.
机译:在这项研究中,在临床多通道手臂ECG映射数据库(N = 153个受试者)中评估了从左上臂(LUA)上的远场双极ECG手臂带导联记录解释心律的可行性。舒适的手臂可穿戴设备对长期心律监测的预期发展。初步的多变量线性回归分析从左臂的10条选定的远场双极引线中获得了ECG胸部I导联,表明在LUA中有3条是相关的,值得从心律信息的角度进行详细评估。一个良好而有效的估计过程,使用了带有两个滞后的人工神经网络,对时间序列非线性回归点估计器进行了研究,结果显示单个受试者的相关系数高达0.969。然后,针对整个LUA数据库采用矢量方法,旨在开发标准胸部Lead I中P-QRS-T波形间隔及其心律属性的与受试者无关的估计过程。在同一研究中,前96个P-QRS-T间隔上的离散余弦变换的系数用作减少输入空间维数的一种方法,仅损失0.1%的功率,并将维数减少到原始空间的5%尺寸。从一个上臂Lead-1对心电图Lead I进行评估的训练有素的ANN在逐个拍子的基础上显示出超过80%的相关系数,对除了典型训练/测试分区的1.34%的拍子之外的所有拍子都有改善。 LUA数据库。结果的非平凡性用随机和有意的真实否定性进行了检验。信息理论分析显示,LUA臂章双极引线与标准Lead I之间估计存在1.6位/拍的信息。(C)2019 The Authors。由Elsevier Ltd.发布

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