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Performance analysis of SS based speech enhancement algorithms for ASR with Non-stationary Noisy Database-NOIZEUS

机译:基于SS的SS语音增强算法与非静止嘈杂数据库-Onizeus的SS语音增强算法

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In Human computer interface the correct translation by computer and exact perception of human depends on the quality of speech input to the machine. Hence speech enhancement technique is very essential in any HCI technique. In this paper we present an algorithm for speech enhancement on the non-stationary noisy database (NOIZEUES). The speech enhancement technique, Spectral Subtraction technique falls under the category of methods based on short time spectral amplitude (or power) estimate. This algorithm is found to be very simple and computationally efficient. Various modifications are made in the spectral subtraction technique and therefore spectral over subtraction, improved spectral over subtraction, iterative spectral over subtraction and multiband spectral subtraction techniques are derived. In this paper basic performance of spectral subtraction, spectral over subtraction and improved spectral over subtraction technique and SS with cross spectral terms with non-stationary noisy database is discussed. It is observed that algorithm works effectively to reduce additive noise present in the noisy speech signal. Limitations of spectral subtraction such as dependence on VAD accuracy and musical noise are described in the proposed paper. All listed algorithms are executed on available database experimentation results of speech and enhanced speech are provided in result section of this paper. Also numerical results are displayed graphically.
机译:在人机界面中,计算机的正确平移和对人类的精确感知取决于对机器的语音质量。因此,语音增强技术在任何HCI技术中都是至关重要的。在本文中,我们提出了一种在非静止嘈杂数据库(NOIZESUES)上的语音增强算法。语音增强技术,光谱减法技术在基于短时间谱幅度(或功率)估计的方法类别下降。发现该算法非常简单和计算效率。在光谱减法技术中进行各种修改,因此导出了频谱上减法,改善过减法的频率,迭代频谱和多频谱减法技术。在本文中,探讨了频谱减法的基本性能,探讨了频谱减法,频谱过度减法和改进的频谱通过减法技术和具有非静态嘈杂数据库的交叉光谱术语的SS。观察到算法有效地工作以减少噪声语音信号中存在的添加性噪声。在提出的纸张中描述了诸如依赖性的谱减法的限制和乐音。所有列出的算法都在可用的数据库实验结果上执行语音结果,并在本文的结果部分中提供了增强的语音。数值结果也以图形方式显示。

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