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Comparison of Several Methods to Detect Impaired Voices

机译:几种检测声音受损的方法的比较

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摘要

Most of vocal and voice diseases cause changes in the voice. These diseases have to be diagnosed and treated during an early stage. There is an increased risk for vocal and voice diseases due to the modern way of life. Acoustic voice analysis is an effective and non-invasive tool due to: a) Objective support of the diagnostics. b) Screening the vocal and voice diseases and especially their early detection. c) Objective determination of the impairment of the vocal function. d) Objective evaluation of the effect of the air pollution on the voice. e) Evaluation of surgical and pharmacological treatments. f) Evaluation of the rehabilitation. Many algorithms to calculate acoustic parameters have been developed and it is demonstrated that there is a great correlation between deviations of parameters and pathologies. The effectiveness and importance of the acoustic analysis of pathological voices has been proven by many experimental researches demonstrating that acoustic parameters of pathologic voices are deviated from the mean. The aim of this paper is to study and compare different methods to be used for the detection of impaired voices. Voice registers are parameterised by means of acoustic parameters, and five different techniques have been applied in order to classify: Minimum Distance, Nearest Neighbour, K-Nearest Neighbour, Fisher analysis, Neural Nets.
机译:大多数声音和声音疾病都会引起声音变化。这些疾病必须在早期得到诊断和治疗。由于现代生活方式,语音和语音疾病的风险增加。由于以下原因,语音分析是一种有效且无创的工具:a)诊断的客观支持。 b)筛查声音和声音疾病,尤其是早期发现的疾病。 c)客观确定声音功能的损害。 d)客观评估空气污染对声音的影响。 e)评估手术和药物治疗。 f)康复评估。已经开发了许多用于计算声学参数的算法,并且证明了参数偏差与病理之间存在很大的相关性。许多实验研究已经证明了病理语音的声学分析的有效性和重要性,这些研究表明病理语音的声学参数偏离了平均值。本文的目的是研究和比较用于检测受损声音的不同方法。语音寄存器通过声学参数进行参数设置,并且已应用了五种不同的技术进行分类:最小距离,最近邻居,K最近邻居,Fisher分析,神经网络。

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