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IEICE TRANSACTIONS on Information

Dynamic Cepstral Representations Based on Order-Dependent Windowing Methods

Hong Kook KIM, Seung Ho CHOI, Hwang Soo LEE

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Summary :

In this paper, we propose dynamic cepstral representations to effectively capture the temporal information of cepstral coefficients. The number of speech frames for the regression analysis to extract a dynamic cepstral coefficient is inversely proportional to the cepstral order since the cepstral coefficients of higher orders are more fluctuating than those of lower orders. By exploiting the relationship between the window length for extracting a dynamic cepstral coefficient and the statistical variance of the cepstral coefficient, we propose three kinds of windowing methods in this work: an utterance-specific variance-ratio windowing method, a statistical variance-ratio windowing method, and an inverse-lifter windowing method. Intra-speaker, inter-speaker, and speaker-independent recognition tests on 100 phonetically balanced words are carried out to evaluate the performance of the proposed order-dependent windowing methods.

Publication
IEICE TRANSACTIONS on Information Vol.E81-D No.5 pp.434-440
Publication Date
1998/05/25
Publicized
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DOI
Type of Manuscript
Category
Speech Processing and Acoustics

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