Iraqi Sign Language Translator system using Deep Learning

Author:

Mohammed Rajaa,M. Kadhem Suhad

Abstract

The deaf and mute use sign language by moving their hands, faces, and bodies to talk to each other or normal people. Sign language is non-verbal communication, which is the process of communication by sending and receiving messages without words between people. The number of deaf people is increasing in the world and Iraq in particular, in addition to the problems in communicating with the world and the difficulty of learning sign language by deaf and hard-of-hearing families, there must be other ways to help the deaf communicate efficiently with ordinary people and learn sign language easily. One such method is to use artificial intelligence to create translation software and recognize hand gestures. This paper presents a computer program that can translate Iraqi sign language into Arabic (text). First, the translation starts with capturing videos to make up the dataset, the proposed system uses a convolutional neural network (CNN) to classify sign language based on its features to impute the meaning of the sign. The accuracy of the part of the proposed system that translates sign language into Arabic text is 99% for words sign.

Publisher

Alsalam University College

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Empowering Communication: A Deep Learning Framework for Arabic Sign Language Recognition with an Attention Mechanism;Computers;2024-06-19

2. Empowering Deaf Community in Healthcare Communication: 1D-CNN-Based Algerian Sign Language Recognition System;2024 6th International Conference on Pattern Analysis and Intelligent Systems (PAIS);2024-04-24

3. Grey Wolf Optimization-based Neural Network for Deaf and Mute Sign Language Recognition: Survey;BIO Web of Conferences;2024

4. Efficient Deep Learning Approach for Detection of Brain Tumor Disease;International Journal of Online and Biomedical Engineering (iJOE);2023-05-16

5. Sign Language Translating into Speech Using Cost-Effective Glove and Smartphone Application for Deaf People;2022 4th International Conference on Current Research in Engineering and Science Applications (ICCRESA);2022-12-20

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