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Time-Frequency Processing of Nonstationary Signals: Advanced TFD Design to Aid Diagnosis with Highlights from Medical Applications

机译:非平稳信号的时频处理:先进的TFD设计可辅助诊断,并具有医疗应用的亮点

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This article presents a methodical approach for improving quadratic time-frequency distribution (QTFD) methods by designing adapted time-frequency (T-F) kernels for diagnosis applications with illustrations on three selected medical applications using the electroencephalogram (EEG), heart rate variability (HRV), and pathological speech signals. Manual and visual inspection of such nonstationary multicomponent signals is laborious especially for long recordings, requiring skilled interpreters with possible subjective judgments and errors. Automated assessment is therefore preferred for objective diagnosis by using T-F distributions (TFDs) to extract more information. This requires designing advanced high-resolution TFDs for automating classification and interpretation. As QTFD methods are general and their coverage is very broad, this article concentrates on methodologies using only a few selected medical problems studied by the authors.
机译:本文介绍了一种通过设计适应性时频(TF)核用于诊断应用的方法来改进二次时频分布(QTFD)方法的方法,并使用脑电图(EEG),心率变异性(HRV)对三种选定的医疗应用进行了说明和病理性语音信号。对这种不稳定的多分量信号进行手动和视觉检查非常费力,尤其是对于长记录而言,需要熟练的口译员进行可能的主观判断和错误。因此,通过使用T-F分布(TFD)提取更多信息,自动评估对于客观诊断是首选的。这就需要设计先进的高分辨率TFD,以自动进行分类和解释。由于QTFD方法是通用的,而且涵盖面非常广泛,因此本文仅关注作者研究的少数选定医学问题的方法。

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