Punjabi speech recognition using EEMD and optimized neural networks

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Details

Automatic speech recognition (ASR) is an automated process that inputs human speech and tries to find out what is said. ASR is useful, for example, in speech-to-text applications (dictation, meeting transcription, etc.), speech-controlled interfaces, search engines for large speech or video archives, and speech-to-speech translation. Punjabi is the 10th most widely spoken language in the world. No considerable work has been done on Punjabi language for automatic speech recognition. In the present work Automatic speech recognition system is developed for isolated words using EEMD and Neural Network in which features are extracted using EEMD and segmentation is done. The Punjabi speech for isolated words is converted to Punjabi text. The aim of the work is to check the accuracy of the EEMD algorithm with noisy signals in contrast of the Speech Recognition. We proceed as detecting the noise level and segmenting the signal for the further processing. Ensemble empirical mode decomposition (EEMD) is a noise assisted method and also a significant improvement on empirical mode decomposition (EMD).

Autorentext

Anchal Katyal - Desenvolvedor de Software. Educação: A Universidade do Texas em Dallas. Trabalho em Gestão de Desempenho de Aplicações (APM): - Prototipagem e desenvolvimento de novas funcionalidades. - Desenvolvimento de aplicações web para APM. - Automatização escrita para o teste de novas funcionalidades. - Scrum master para a equipa de desenvolvimento de funcionalidades.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783659583490
    • Sprache Englisch
    • Größe H220mm x B150mm x T5mm
    • Jahr 2018
    • EAN 9783659583490
    • Format Kartonierter Einband
    • ISBN 3659583499
    • Veröffentlichung 11.07.2018
    • Titel Punjabi speech recognition using EEMD and optimized neural networks
    • Autor Anchal Katyal
    • Gewicht 137g
    • Herausgeber LAP LAMBERT Academic Publishing
    • Anzahl Seiten 80
    • Genre Sozialwissenschaften, Recht & Wirtschaft

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