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Speech Recognition Using Artificial Neural Networks

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dc.contributor.author Elhassan, Wifag Abdallah
dc.contributor.author Supervisor - Eltahir Mohammed Hussein
dc.date.accessioned 2014-10-20T07:09:16Z
dc.date.available 2014-10-20T07:09:16Z
dc.date.issued 2008-05
dc.identifier.citation Elhassan, Wifag Abdallah. Speech Recognition Using Artificial Neural Networks/, Wifag Abdallah Elhassan؛ Eltahir Mohammed Hussein.-Khartoum : sudan university of science and technology,computer science,2008.-120p:ill;28cm.M.Sc. en_US
dc.identifier.uri http://repository.sustech.edu/handle/123456789/7369
dc.description Thesis en_US
dc.description.abstract The objective of this study is to evaluate the potentiality of using Artificial Neural Networks (ANNs) for Speech Recognition. The Linear Predictive Code (LPC) was used for the feature extractions of the word used. The speech data (spoken words) has been converted in to voice signals in digital format. MS-Excel package has been used to generate 600 learning pattern. 540 were used to train General Regression Neural Network (GRNN) and Back Propagation Network (BPN) architecture. The reminder 60 patterns were used to test the performance of the trained shell. The General Regression Neural Network (GRNN) was found to be able to recognize speech patterns and process test patterns with an average error of ±0.016667 while the standard deviation (STVD) was ±0.129099. Otherwise, the average of the BPN was ±1.168 ×10-4. en_US
dc.description.sponsorship Sudan University of Science and Technology en_US
dc.language.iso en_US en_US
dc.publisher Sudan University of Science and Technology en_US
dc.subject Artificial Neural Networks en_US
dc.subject Speech Recognition en_US
dc.subject Speech en_US
dc.subject ANNs en_US
dc.subject Linear Predictive Code (LPC) en_US
dc.title Speech Recognition Using Artificial Neural Networks en_US
dc.title.alternative التعرف على الكلام باستخدام الشبكات العصبية الاصطناعية en_US
dc.type Thesis en_US


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