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A new approach to time dependent AR modeling of signals and its application to analysis of the fourth heart sound

机译:基于时间的信号AR建模的新方法及其在第四心音分析中的应用

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The authors present a method for estimating spectrum transition between short-length signals of succeeding frames in low-SNR cases when the transition pattern is complex and/or there are large differences in the transition patterns among the individual sets of multiframe signals. The present approach uses a linear algorithm without any basic functions. Instead, the authors use the spectrum transition constraint, and the singular value decomposition. (SVD)-based technique is applied to obtain more accurate estimates. For the analysis of multiframe signals of the fourth heart sounds obtained during a stress test, significant differences in the transition patterns are clearly detected in the spectra between patients with myocardial infarction and normal persons The significant characteristics of these transition patterns may be applied to acoustic diagnosis of heart disease.
机译:作者提出了一种在过渡图案很复杂和/或在多帧信号的各个集合之间过渡图案存在较大差异时,在低SNR情况下估算后续帧的短长度信号之间的频谱过渡的方法。本方法使用没有任何基本功能的线性算法。相反,作者使用频谱过渡约束和奇异值分解。基于(SVD)的技术可用于获取更准确的估算值。为了分析在压力测试期间获得的第四种心音的多帧信号,在心肌梗塞患者和正常人之间的频谱中清楚地检测到过渡模式的显着差异。这些过渡模式的显着特征可用于声学诊断心脏病。

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