Please use this identifier to cite or link to this item: https://rda.sliit.lk/handle/123456789/3175
Title: E-Learning Education System For Children With Down Syndrome
Authors: Sampath, A.S.T
Vidanapathirana, M.W.
Gunawardana, T.B.A
Sandeepani, P.W.H.
Chandrasiri, L.H.S.S
Attanayaka, B
Keywords: Deep learning
E-learning
Image processing
Machine learning
Voice recognition
Issue Date: 16-Sep-2022
Publisher: Institute of Electrical and Electronics Engineers
Citation: A. S. T. Sampath, M. W. Vidanapathirana, T. B. A. Gunawardana, P. W. H. Sandeepani, L. H. S. S. Chandrasiri and B. Attanayaka, "E-Learning Education System For Children With Down Syndrome," 2022 IEEE 10th Region 10 Humanitarian Technology Conference (R10-HTC), Hyderabad, India, 2022, pp. 450-455, doi: 10.1109/R10-HTC54060.2022.9929446.
Series/Report no.: IEEE Region 10 Humanitarian Technology Conference, R10-HTC;Volume 2022- Pages 450 - 455
Abstract: The World Health Organization assesses that Down Syndrome (DS) affects about 1 in 1000 births worldwide. Children with DS cannot learn, as usual, instigating numerous inadequacies that lead to formative issues such as trouble encoding information and low intelligence to interpret data for decision-making. As a superior technique for these kids' intercom-municating and logical intellect, free-hand sketch drawing, Voice training, and word prediction activities can be success-fully utilized. As the best way to express the mindset of such chil-dren, introducing an E-Learning system makes a friendlier ac-tivity than learning about the past. Because of the improvement of Artificial intelligence and its encouragement, E-Learning-re-lated exploration and applications are moving at an enormous advancement rate. The main objective of this project is to de-velop a reliable and efficient approach to predicting the devel-opment of DS children. Classifying and identifying those hand-written images and voice samples and those samples are given by children with DS compared to the teacher through the construction of a model structure. This research project specially considered local down syndrome children's hand-drawn images, voice samples, letters, numbers, and words as the input. As a result, it gives accuracy and similarity with the teacher's sam-ples and relates parts in the down syndrome children's samples. The system uses artificial intelligence technologies. Through that, the knowledge capacity of the DS children and their con-veyed articulation of that knowledge can be assessed for additional correlations and investigation.
URI: https://rda.sliit.lk/handle/123456789/3175
ISSN: 25727621
Appears in Collections:Department of Information Technology

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