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Cancer larynx detection using glottal flow parameters and statistical tools

机译:使用声门血流参数和统计工具检测癌症喉

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摘要

One of the most interesting application of speech processing is the identification and classification of pathological voice. Such area of research is still a challenging task. In this paper, we are interested in the severe case of the pathological voice; larynx cancer. This work concentrates on developing a feature extraction for detecting and classifying larynx cancer by investigating different glottal flow parameters. Once the glottal flow is extracted, temporal and frequency parameters are calculated. From the large obtained set of parameters, we choose the most pertinent in terms of pathologicormal discrimination. For this purpose, a deep analysis of statistical tools such as boxplot and probability density permits to select and ordered the most significant parameters. The detection and the classification of the larynx cancer is achieved by artificial neural network (ANN). A rate about 96.9 % of the discrimination accuracy is achieved using the developed technique.
机译:语音处理最有趣的应用之一是病理性语音的识别和分类。这种研究领域仍然是一项艰巨的任务。在本文中,我们对病理性声音的严重情况感兴趣。喉癌。这项工作专注于通过研究不同的声门血流参数来开发特征提取以检测和分类喉癌。一旦声门血流被提取,就计算出时间和频率参数。从获得的大量参数中,我们选择病理/正常判别中最相关的参数。为此,对箱形图和概率密度之类的统计工具进行深入分析,就可以选择和排序最重要的参数。喉癌的检测和分类是通过人工神经网络(ANN)实现的。使用开发的技术,可以达到约96.9%的辨别精度。

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