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Joint Application of Audio Spectral Envelope and Tonality Index in an E-Asthma Monitoring System

机译:音频频谱包络和音调指数在电子哮喘监测系统中的联合应用

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摘要

This paper presents in detail a recently introduced highly efficient method for automatic detection of asthmatic wheezing in breathing sounds. The fluctuation in the audio spectral envelope (ASE) from the MPEG-7 standard and the value of the tonality index (TI) from the MPEG-2 Audio specification are jointly used as discriminative features for wheezy sounds, while the support vector machine (SVM) with a polynomial kernel serves as a classifier. The advantages of the proposed approach are described in the paper (e.g., detecting weak wheezes, very good ROC characteristics, independence from noise color). Since the method is not computationally complex, it is suitable for remote asthma monitoring using mobile devices (personal medical assistants). The main contribution of this paper consists of presenting all the implementation details concerning the proposed approach for the first time, i.e., the pseudocode of the method and adjusting the values of the ASE and TI parameters after which only one (not two) FFT is required for analysis of a next overlapping signal fragment. The efficiency of the method has also been additionally confirmed by the AdaBoost classifier with a built-in mechanism to feature ranking, as well as a previously performed minimal-redundancy-maximal-relevance test.
机译:本文详细介绍了一种最新引入的高效方法,用于自动检测呼吸音中的哮喘性喘息。来自MPEG-7标准的音频频谱包络(ASE)的波动和来自MPEG-2音频规范的音调指数(TI)的值一起用作微弱声音的判别特征,而支持向量机(SVM) ),并使用多项式内核作为分类器。论文中介绍了该方法的优点(例如,检测微弱的喘鸣声,非常好的ROC特性,与噪声颜色无关)。由于该方法在计算上并不复杂,因此适用于使用移动设备(个人医疗助手)进行的远程哮喘监测。本文的主要贡献在于,首次提出了与该方法有关的所有实现细节,即该方法的伪代码,并调整了ASE和TI参数的值,此后仅需要一个(不是两个)FFT用于分析下一个重叠的信号片段。 AdaBoost分类器还具有功能分级的内置机制,以及先前执行的最小冗余最大相关性测试,也进一步证实了该方法的效率。

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