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NOISY SIGNAL IDENTIFICATION FROM NON-STATIONARY AUDIO SIGNALS

机译:从非固定音频信号中识别出噪声信号

摘要

Traditionally known classification methods of non-stationary physiological audio signals as noisy and clean involve human intervention, may involve dependency on particular type of classifier and further analyses is carried out on classified clean signals. However, in non-stationary audio signals a major portion may end up being classified as noisy and hence may get rejected which may cause missing of intelligence which could have been derived from lightly noisy audio signals that may be critical. The present disclosure enables automation of classification based on auto-thresholding and statistical isolation wherein noisy signals are further classified as highly noisy and lightly noisy through continuous dynamic learning.
机译:传统上已知的非平稳生理音频信号的分类方法(如嘈杂和干净的)涉及人工干预,可能涉及对分类器的特定类型的依赖,并对分类的干净信号进行进一步的分析。然而,在非平稳音频信号中,大部分可能最终被归类为噪声,因此可能会被拒绝,这可能会导致丢失智能,而这些智能可能是由可能至关重要的轻噪声音频信号得出的。本公开使得能够基于自动阈值和统计隔离来自动进行分类,其中,通过连续动态学习将噪声信号进一步分类为高噪声和轻噪声。

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