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dc.contributor.authorPaulraj, Murugesa Pandiyan, Prof. Madya
dc.contributor.authorSazali, Yaacob, Prof. Dr.
dc.contributor.authorNazri, A.
dc.contributor.authorKumar, S.
dc.date.accessioned2010-08-13T06:06:39Z
dc.date.available2010-08-13T06:06:39Z
dc.date.issued2009-03-06
dc.identifier.citationp.59-62en_US
dc.identifier.isbn978-1-4244-4150-1
dc.identifier.urihttp://ieeexplore.ieee.org/xpls/abs_all.jsp?arnumber=5069189
dc.identifier.urihttp://dspace.unimap.edu.my/123456789/8654
dc.descriptionLink to publisher's homepage at http://ieeexplore.ieee.org/en_US
dc.description.abstractThe English language as spoken by Malaysians varies from place to place and differs from one ethnic community and its sub-group to another. Hence, it is necessary to develop an exclusive Speech to text translation system for understanding the English pronunciation as spoken by Malaysians. Speech translation is a process of both speech recognition and equivalent phonemic to word translation. Speech recognition is a process of identifying phonemes from the speech segment. In this paper, the initial step for speech recognition by identifying the phoneme features is proposed. In order to classify the phoneme features, Mel-frequency cepstral coefficients (MFCC) are computed in this paper. A simple feed forward Neural Network (FFNN) trained by back propagation procedure is proposed for identifying the phonemes features. The extracted MFCC coefficients are used as input to a neural network classifier for associating it to one of the 11 classes.en_US
dc.language.isoenen_US
dc.publisherInstitute of Electrical and Elctronics Engineering (IEEE)en_US
dc.relation.ispartofseriesProceedings of the 5th International Colloquium on Signal Processing and Its Applications (CSPA) 2009en_US
dc.subjectDigital signal processingen_US
dc.subjectMel-frequency cepstrsal coefficientsen_US
dc.subjectPhonemesen_US
dc.subjectSpeech to text translationen_US
dc.subjectInternational Colloquium on Signal Processing and Its Applications (CSPA)en_US
dc.titleClassification of vowel sounds using MFCC and feed forward neural networken_US
dc.typeWorking Paperen_US


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