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Automatic Speech Recognition Method Based on Deep Learning Approaches for Uzbek Languageopen access

Authors
Mukhamadiyev, AbdinabiKhujayarov, IlyosDjuraev, OybekCho, Jinsoo
Issue Date
May-2022
Publisher
MDPI
Keywords
convolutional neural network; end-to-end speech recognition; transformers; CTC-attention; Uzbek language; deep learning; hidden Markov model
Citation
SENSORS, v.22, no.10
Journal Title
SENSORS
Volume
22
Number
10
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/85031
DOI
10.3390/s22103683
ISSN
1424-8220
Abstract
Communication has been an important aspect of human life, civilization, and globalization for thousands of years. Biometric analysis, education, security, healthcare, and smart cities are only a few examples of speech recognition applications. Most studies have mainly concentrated on English, Spanish, Japanese, or Chinese, disregarding other low-resource languages, such as Uzbek, leaving their analysis open. In this paper, we propose an End-To-End Deep Neural Network-Hidden Markov Model speech recognition model and a hybrid Connectionist Temporal Classification (CTC)-attention network for the Uzbek language and its dialects. The proposed approach reduces training time and improves speech recognition accuracy by effectively using CTC objective function in attention model training. We evaluated the linguistic and lay-native speaker performances on the Uzbek language dataset, which was collected as a part of this study. Experimental results show that the proposed model achieved a word error rate of 14.3% using 207 h of recordings as an Uzbek language training dataset.
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Cho, Jin Soo
College of IT Convergence (컴퓨터공학부(컴퓨터공학전공))
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