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Analysis of aging effects on the arterial pulse contour using an artificial neural network

机译:人工神经网络分析动脉脉冲轮廓对动脉脉冲轮廓的影响

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Age correlates both with the prevalence of cardiovascular diseases and with arterial pulse contour changes in healthy adults. If the effect of normal age-related changes can be better elucidated many of the increasingly popular methods of noninvasive pulse contour analysis could be made more reliable. In this paper, the predictability of age in 200 healthy adults is assessed using a radial basis function (RBF) network. The inputs are the complex coefficients of the Fourier transform of a single normalized pulse together with beat length, pulse and mean pressures, the harmonic at peak energy, and gender. Age is the output. Age predictability using different combinations of these components reveals that the first 27 harmonics contain aging information. Use of pulse pressure and harmonic of peak energy improved prediction, while mean pressure, beat length, and gender did not. These results suggest that age-related pulse contour changes in healthy adults are due to pulse pressure rather than absolute pressure, and energy shifts in the frequency distribution rather than changes in heart rate.
机译:年龄都与心血管疾病的患病率,并与健康成人动脉脉搏轮廓的变化相关。如果正常年龄相关变化带来的影响,可以更好地阐明许多非侵入性脉冲轮廓分析的日益流行的方法,可以更加可靠。在本文中,年龄在200名健康成人的预测是使用径向基函数(RBF)网络进行评估。的输入是傅立叶变换的复系数与拍长,脉冲和平均压力,在谐波峰值能量,和性别变换单个归一化脉冲一起的。年龄是输出。使用这些组件的不同组合年龄预见性揭示了第一谐波27包含老化的信息。脉压和使用谐波峰值能量的改进预测,而平均压,拍长,和性别没有。这些结果表明,健康成人年龄相关的脉冲轮廓变化是由于脉冲压力,而不是绝对压力,并能转移的频率分布,而不是心脏率的变化。

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