DocumentCode
1675576
Title
Word Recognition Acceleration by Double Random Seed Matching in Perceptual Cepstrum Error Space
Author
Serackis, Arturas ; Sledevic, Tomyslav ; Tamulevieius, Gintautas ; Navakauskas, Dalius
Author_Institution
Dept. of Electron. Syst., Vilnius Gediminas Tech. Univ., Vilnius, Lithuania
fYear
2013
Firstpage
287
Lastpage
292
Abstract
Paper presents an algorithm for acceleration of the dynamic time warping (DTW) based isolated word recognition algorithm. The number of matching operations directly depends on the size of vocabulary. A set of perceptual cepstrum features is calculated for each word and stored in the vocabulary as a reference. Additionally all words (references) are compared between each other using DTW in order to get the reference-to-reference matches. The acceleration of pattern matching is acquired by adaptive search of the pattern reference according to the previous matching results ant reference-to-reference matches. A modified word selection scenario applied for the vocabulary reduces the number of matching operations by 62-70 % in average. The reduction of matching operations allows to use DTW based speech recognition methods in real-time control applications and only need additional 13 % of vocabulary storage space.
Keywords
cepstral analysis; dynamic programming; feature extraction; pattern matching; speech processing; speech recognition; vocabulary; DTW; adaptive search; double random seed matching; dynamic time warping; isolated word recognition algorithm; matching operations; modified word selection scenario; pattern matching acceleration; perceptual cepstrum error space; perceptual cepstrum features; reference-to-reference matches; speech recognition methods; vocabulary size; vocabulary storage space; word recognition acceleration; Heuristic algorithms; Pattern matching; Speech; Speech recognition; Vectors; Vocabulary; dynamic time warping; search optimisation; speech recognition;
fLanguage
English
Publisher
ieee
Conference_Titel
Modelling Symposium (EMS), 2013 European
Conference_Location
Manchester
Print_ISBN
978-1-4799-2577-3
Type
conf
DOI
10.1109/EMS.2013.50
Filename
6779861
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