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Speech denoising using discrete wavelet packet decomposition technique

机译:使用离散小波包分解技术的语音去噪

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In this paper, a discrete wavelet packet transform algorithm is used for speech signal denoising. Both hard and soft thresholding are applied and noisy speech signal samples corrupted by white Gaussian noise from 0dB to +15dB are denoised in our experiments. Output SNR (Signal to Noise Ratio) values are calculated and compared with input SNR values using both types of thresholding methods. Soft thresholding method is observed to perform better than hard thresholding at all input SNR levels. Hard thresholding shows a maximum of 5.9 dB improvement whereas soft thresholding shows a maximum of 6.5 dB improvement as an output SNR value.
机译:本文将离散小波包变换算法用于语音信号去噪。在我们的实验中,对硬阈值和软阈值均进行了应用,并且高白噪声从0dB到+ 15dB破坏了嘈杂的语音信号样本。使用两种类型的阈值方法计算输出SNR(信噪比)值,并将其与输入SNR值进行比较。在所有输入SNR级别,观察到软阈值方法比硬阈值方法性能更好。硬阈值显示最大5.9 dB的改善,而软阈值显示最大6.5 dB的改善,作为输出SNR值。

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