Detection of voice disability and its severity in children

Mohina Ahmadi, Pavani Mullapudi, Shreyashri Athani, Shikha Tripathi
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Abstract

Voice Disability is one of the common disabilities experienced by children. Speech being the major mode of communication, it is important to rectify the voice-related problems at an early stage in life. Painful endoscopic techniques like laryngoscopy are used by doctors to identify the voice disability. In this work, an algorithm is devised to measure the severity of voice disability in children using signal processing techniques. Spectrogram and curve fitting techniques are used to detect voice disability. The normal and pathological curve fitted functions are passed through an adaptive signal processing system. Correlation between the normal function and tuned pathological function is obtained which is used to determine the severity of the disability. The reported work on this topic is language-dependent and uses machine learning algorithms that need large databases. In this work, adaptive signal processing techniques and the use of voice acoustic parameters are explored. Sound samples used are vowel sounds that are independent of the language and a range has been assigned to quantify the severity of the disability.
儿童语音残疾的检测及其严重程度
语音障碍是儿童常见的残疾之一。言语是沟通的主要方式,在幼年阶段纠正与声音有关的问题是很重要的。像喉镜检查这样痛苦的内窥镜检查技术被医生用来识别声音障碍。在这项工作中,设计了一种算法,利用信号处理技术来测量儿童语音残疾的严重程度。利用谱图和曲线拟合技术检测语音残疾。正常曲线和病理曲线的拟合函数通过自适应信号处理系统。正常功能和调整后的病理功能之间的相关性被用来确定残疾的严重程度。关于该主题的报告工作依赖于语言,并使用需要大型数据库的机器学习算法。在这项工作中,自适应信号处理技术和语音声学参数的使用进行了探索。使用的声音样本是独立于语言的元音,并指定了一个范围来量化残疾的严重程度。
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