首页> 外文会议>Biomedical Engineering Meeting, 2009. BIYOMUT 2009 >Detection of frequency sub-bands on Heart Rate Variability in Supra-ventricular Tachyarrhythmia patients using artificial neural networks
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Detection of frequency sub-bands on Heart Rate Variability in Supra-ventricular Tachyarrhythmia patients using artificial neural networks

机译:人工神经网络检测室上性快速性心律失常患者心率变异的频率子带

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Supra-ventricular Tachyarrhythmia (SVTA) called as disturbances of heart around atria and Atrioventricular (AV) node is one of the most common heart arrhythmias. Heart Rate Variability (HRV) is a pointer for classification of autonomic nervous system (ANS) and heart arrhythmias. Wavelet Packet Transform (WPT) is an efficient tool for HRV like non stationary signals. This study presents critical frequency intervals for HRV analysis in SVTA patients and the effectiveness of these frequency intervals on base-bands. In the study, sub-frequency regions on HRV in MIT-BIH SVTA database obtained from half-hour ECG recordings of 78 patients are calculated and analyzed. Each data is decomposed in sub-frequency region using WPT with 8 levels and their domination effects of each sub-frequency region on its base-band are evaluated using Multi Layer Perceptron Neural Networks (MLPNN). While 0.0546875 - 0.078125 Hz on Low Frequency band (LF) points the highest accuracy value, subfrequency bands including 0.1171875 - 0.15625 Hz frequency interval have the lowest accuracy values. However, accuracy values of sub-frequency regions on High Frequency (HF) band points near values each other and the detection of dominant sub-bands got harder. In this band, while sub-frequency bands including 0.15625 - 0.2734375 Hz frequency interval point high accuracy value, sub-frequency bands including 0.25 - 0.328125 Hz frequency interval have lower accuracy values.
机译:室上性快速性心律失常(SVTA)被称为心房和房室(AV)节点周围的心脏紊乱,是最常见的心律不齐之一。心率变异性(HRV)是对自主神经系统(ANS)和心律不齐进行分类的指标。小波包变换(WPT)是像非平稳信号一样用于HRV的有效工具。这项研究提出了SVTA患者HRV分析的关键频率间隔,以及这些频率间隔在基带上的有效性。在这项研究中,对来自78位患者的半小时心电图记录获得的MIT-BIH SVTA数据库中HRV的亚频率区域进行了计算和分析。使用具有8个级别的WPT在子频率区域中分解每个数据,并使用多层感知器神经网络(MLPNN)评估每个子频率区域在其基带上的主导作用。低频段(LF)上的0.0546875-0.078125 Hz指向最高精度值,而包含0.1171875-0.15625 Hz频率间隔的子频段的最低精度值。然而,高频(HF)频带上的子频率区域的精度值彼此接近,并且占主导地位的子频带的检测变得困难。在该频带中,频率间隔为0.15625〜0.2734375Hz的子频带表示高精度值,而频率间隔为0.25〜0.328125Hz的子频带精度值较低。

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