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A simple but efficient voice activity detection algorithm through Hilbert transform and dynamic threshold for speech pathologies

机译:通过希尔伯特变换和动态阈值的语音病理学一种简单而有效的语音活动检测算法

摘要

A simple but efficient voice activity detector based on the Hilbert transform and a dynamic threshold is presented to be used on the pre-processing of audio signals -- The algorithm to define the dynamic threshold is a modification of a convex combination found in literature -- This scheme allows the detection of prosodic and silence segments on a speech in presence of non-ideal conditions like a spectral overlapped noise -- The present work shows preliminary results over a database built with some political speech -- The tests were performed adding artificial noise to natural noises over the audio signals, and some algorithms are compared -- Results will be extrapolated to the field of adaptive filtering on monophonic signals and the analysis of speech pathologies on futures works
机译:提出了一种基于Hilbert变换和动态阈值的简单但有效的语音活动检测器,用于音频信号的预处理-定义动态阈值的算法是对文献中凸组合的修改-该方案允许在非理想条件下(例如频谱重叠噪声)检测语音中的韵律和静音段-本工作显示了基于带有某种政治言论的数据库的初步结果-测试是在添加人工噪声的情况下进行的音频信号上的自然噪声,并比较了一些算法-结果将外推到单声道信号的自适应滤波和期货作品的语音病理分析领域

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