Sign Language Recognition using Neural Networks 

Journal Title: TEM JOURNAL - Year 2014, Vol 3, Issue 4

Abstract

 Sign language plays a great role as communication media for people with hearing difficulties.In developed countries, systems are made for overcoming a problem in communication with deaf people. This encouraged us to develop a system for the Bosnian sign language since there is a need for such system. The work is done with the use of digital image processing methods providing a system that teaches a multilayer neural network using a back propagation algorithm. Images are processed by feature extraction methods, and by masking method the data set has been created. Training is done using cross validation method for better performance thus; an accuracy of 84% is achieved.

Authors and Affiliations

Sabaheta Đogić, Gunay Karli

Keywords

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  • EP ID EP142440
  • DOI -
  • Views 151
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How To Cite

Sabaheta Đogić, Gunay Karli (2014). Sign Language Recognition using Neural Networks . TEM JOURNAL, 3(4), 296-301. https://europub.co.uk/articles/-A-142440