Computer Vision-Enabled Character Recognition of Hand Gestures for Patients with Hearing and Speaking Disability

Author:

Juneja Sapna1,Juneja Abhinav1,Dhiman Gaurav2ORCID,Jain Shashank3,Dhankhar Anu4,Kautish Sandeep5ORCID

Affiliation:

1. KIET Group of Institutions, Delhi NCR, Ghaziabad, India

2. Government Bikram College of Commerce, Patiala, India

3. BMIET, Sonepat, India

4. KIET Group of Institutions, Ghaziabad, India

5. LBEF Campus, Kathmandu, Nepal

Abstract

Hand gesture recognition is one of the most sought technologies in the field of machine learning and computer vision. There has been an unprecedented demand for applications through which one can detect the hand signs for deaf people and people who use sign language to communicate, thereby detecting hand signs and correspondingly predicting the next word or recommending the word that may be most appropriate, followed by producing the word that the deaf people and people who use sign language to communicate want to say. This article presents an approach to develop such a system by that we can determine the most appropriate character from the sign that is being shown by the user or the person to the system. To enable pattern recognition, various machine learning techniques have been explored and we have used the CNN networks as a reliable solution in our context. The creation of such a system involves several convolution layers through which features have been captured layer by layer. The gathered features from the image are further used for training the model. The trained model efficiently predicts the most appropriate character in response to the sign exposed to the model. Thereafter, the predicted character is used to predict further words from it according to the recommendation system used in this case. The proposed system attains a prediction accuracy of 91.07%.

Publisher

Hindawi Limited

Subject

Computer Networks and Communications,Computer Science Applications

Cited by 25 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. Implementation and Analysis of the Proposed Model in a Distributed e‐ Healthcare System;Meta Heuristic Algorithms for Advanced Distributed Systems;2024-03-08

2. Machine Learning and Its Application in Educational Area;Meta Heuristic Algorithms for Advanced Distributed Systems;2024-03-08

3. Lightweight American Sign Language and Gesture Recognition using YOLOv8;2023 IEEE 15th International Conference on Computational Intelligence and Communication Networks (CICN);2023-12-22

4. Empowering Communication: Harnessing CNN and Mediapipe for Sign Language Interpretation;2023 International Conference on Recent Advances in Science and Engineering Technology (ICRASET);2023-11-23

5. Recognition of Radar-Based Deaf Sign Language Using Convolution Neural Network;International Journal of Integrated Engineering;2023-07-31

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