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Implementation of an Autocorrelation Pitch Detector in Application to Query by Humming
作者姓名:SHEKun  CHENShu-zhen
作者单位:SchoolofElectronicInformation,WuhanUniversity,Wuhan430072,Hubei,China
基金项目:SupportedbytheNationalNaturalScienceFoun dationofChina(50099620)andthe863HighTechnologyProjectof China(2001AA132050)
摘    要:A pitch detector for application in query by humming (QBH) is implemented in this paper. This algorithm is made up of two parts: note segmentation and pitch detection. In the first part, voiced/silence decision is made on each segment of the input signal by a pattern recognition approach, and further, the preparatory note borders are obtained; then, via analysis of the instantaneous energy contour, the adjacent notes that adhere to each other are separated. In the second part, pitch is estimated for all frames contained in a note‘s duration by an autocorrelation method and the mean of these pitch values is taken as the average pitch of this note. Moreover, in order to remove the effect of formant structure, a nonlinear preprocessing is adopted in the pitch detection part and the autocorrelation function is properly weighted before peak picking. Finally, hummings of several experimenters with different voice characters are recorded to test this pitch detector, whose efficiency and reliability are proved by the result.

关 键 词:自动校正  斜度检测器  记录分割  信号输入
收稿时间:1 September 2004

Implementation of an autocorrelation pitch detector in application to query by humming
SHEKun CHENShu-zhen.Implementation of an Autocorrelation Pitch Detector in Application to Query by Humming[J].Wuhan University Journal of Natural Sciences,2005,10(3):539-544.
Authors:She Kun  Chen Shu-zhen
Institution:(1) School of Electronic Information, Wuhan University, 430072 Wuhan Hubei, China
Abstract:A pitch detector for application in query by humming (QBH) is implemented in this paper. This algorithm is made up of two parts: note segmentation and pitch detection. In the first part, voiced/silence decision is made on each segment of the input signal by a pattern recognition approach, and further, the preparatory note borders are obtained; then, via analysis of the instantaneous energy contour, the adjacent notes that adhere to each other are separated. In the second part, pitch is estimated for all frames contained in a note's duration by an autocorrelation method and the mean of these pitch values is taken as the average pitch of this note. Moreover, in order to remove the effect of formant structure, a nonlinear preprocessing is adopted in the pitch detection part and the autocorrelation function is properly weighted before peak picking. Finally, hummings of several experimenters with different voice characters are recorded to test this pitch detector, whose efficiency and reliability are proved by the results. Foundation item: Supported by the National Natural Science Foundation of China (50099620) and the 863 High Technology Project of China (2001AA132050) Biography: SHE kun (1979-), male, Ph.D. candidate, research direction: multimedia signal processing.
Keywords:autocorrelation  pitch detector  query by humming  note segmentation
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