Title of article
Noise-Robust Pitch Detection using Auto-correlation Function with Enhancements
Author/Authors
Muhammad, Ghulam King Saud University - College of Computer and Information Sciences - Department of Computer Engineering, Saudi Arabia
From page
13
To page
28
Abstract
An efficient noise-robust pitch detection algorithm is proposed in this paper. The algorithm is based on time domain autocorrelation function (ACF). A bank of band-pass filters is used for competitive contribution of periodicity to select primary pitch candidates. A weighting criterion that involves both increase and decrease in merit is applied to the candidates by exploiting the presence or the absence of pitch harmonics. Finally, a simple enhancement is integrated to smooth the pitch contour. The proposed algorithm is evaluated on TIMIT database in different types and levels of noise in terms of pitch and voice activity detection. The experimental results show the superiority of the proposed method over well known other methods.
Keywords
Pitch , autocorrelation , voiced , unvoiced , speech analysis
Journal title
Journal Of King Saud University - Computer and Information Sciences
Journal title
Journal Of King Saud University - Computer and Information Sciences
Record number
2609712
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