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Article type: Research Article
Authors: Filipovič, Mark | Lipeika, Antanas
Affiliations: Recognition Processes Department, Institute of Mathematics and Informatics, Goštauto 12‐204, LT‐01108 Vilnius, Lithuania, e‐mail: [email protected], [email protected]
Abstract: The development of Lithuanian HMM/ANN speech recognition system, which combines artificial neural networks (ANNs) and hidden Markov models (HMMs), is described in this paper. A hybrid HMM/ANN architecture was applied in the system. In this architecture, a fully connected three‐layer neural network (a multi‐layer perceptron) is trained by conventional stochastic back‐propagation algorithm to estimate the probability of 115 context‐independent phonetic categories and during recognition it is used as a state output probability estimator. The hybrid HMM/ANN speech recognition system based on Mel Frequency Cepstral Coefficients (MFCC) was developed using CSLU Toolkit. The system was tested on the VDU isolated‐word Lithuanian speech corpus and evaluated on a speaker‐independent ∼750 distinct isolated‐word recognition task. The word recognition accuracy obtained was about 86.7%.
Keywords: speech recognition, artificial neural networks, hidden Markov models
Journal: Informatica, vol. 15, no. 4, pp. 465-474, 2004
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