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dc.contributor.authorMurugesa Pandiyan, Paulraj, Prof. Madya Dr,
dc.contributor.authorSazali, Yaacob, Prof. Dr.
dc.contributor.authorHariharan, Muthusamy, Dr.
dc.date.accessioned2012-04-10T12:53:55Z
dc.date.available2012-04-10T12:53:55Z
dc.date.issued2007-11-27
dc.identifier.citationp. 160-165en_US
dc.identifier.urihttp://dspace.unimap.edu.my/123456789/18754
dc.descriptionProceedings of the Regional Conference on Engineering Mathematics, Mechanics, Manufacturing & Architecture (EM3 ARC) 2007 was jointly organized by Universiti Kebangsaan Malaysia (UKM), 27th - 28th November 2007 at Kuala Lumpur, Malaysia.en_US
dc.description.abstractThe discrimination of normal and pathological voices using noninvasive acoustical analysis features helps speech specialits to perform accurate diagnoses of vocal and voices disease. Acoustic analysis is a non-invasive technique based on digital processing of the speech, acoustic analyses of normal and pathological voices have become increasingly interesting to researchers in ENT and speech pathologies. This paper presents discrimination of pathological voices using Artificial Neural Network for the accurate diagnosis of vocal and voices disease. A Neural network is trained using Back propagation algorithm with bipolar activation function and systole activation function. The neural network trained by using back propagation algorithm with systole activation function provides very promising classification accuracy of 99% to discriminate the voices as pathological or a non-pathological or a non-pathological voice accurately.en_US
dc.language.isoenen_US
dc.publisherNoise, Vibration and Comfort Research Groupen_US
dc.relation.ispartofseriesProceedings of the Regional Conference on Engineering Mathematics, Mechanics, Manufacturing & Architecture (EM3 ARC) 2007en_US
dc.subjectAcoustic featuresen_US
dc.subjectNeural networken_US
dc.subjectBack propagation algorithmen_US
dc.subjectSystole activation functionen_US
dc.titleDiscrimination of pathological voices using systole activated neural networken_US
dc.typeWorking Paperen_US
dc.contributor.urlpaul@unimap.edu.myen_US


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