An AI-Based Framework for Translating American Sign Language to English and Vice Versa

IF 2.4 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS
Vijayendra D. Avina, Md Amiruzzaman, Stefanie Amiruzzaman, Linh B. Ngo, M. Ali Akber Dewan
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引用次数: 0

Abstract

In this paper, we propose a framework to convert American Sign Language (ASL) to English and English to ASL. Within this framework, we use a deep learning model along with the rolling average prediction that captures image frames from videos and classifies the signs from the image frames. The classified frames are then used to construct ASL words and sentences to support people with hearing impairments. We also use the same deep learning model to capture signs from the people with deaf symptoms and convert them into ASL words and English sentences. Based on this framework, we developed a web-based tool to use in real-life application and we also present the tool as a proof of concept. With the evaluation, we found that the deep learning model converts the image signs into ASL words and sentences with high accuracy. The tool was also found to be very useful for people with hearing impairment and deaf symptoms. The main contribution of this work is the design of a system to convert ASL to English and vice versa.
基于人工智能的美英手语翻译框架
本文提出了一个将美国手语转换为英语和英语转换为美国手语的框架。在此框架内,我们使用深度学习模型以及滚动平均预测,从视频中捕获图像帧并对图像帧中的符号进行分类。然后使用分类框架来构建美国手语单词和句子,以帮助有听力障碍的人。我们还使用相同的深度学习模型来捕捉有失聪症状的人的信号,并将它们转换成美国手语单词和英语句子。在此框架的基础上,我们开发了一个基于web的工具,用于实际应用,并将该工具作为概念验证。通过评估,我们发现深度学习模型将图像符号转换为美国手语单词和句子的准确率很高。该工具还被发现对有听力障碍和失聪症状的人非常有用。本工作的主要贡献是设计了一个将美国手语转换为英语的系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Information (Switzerland)
Information (Switzerland) Computer Science-Information Systems
CiteScore
6.90
自引率
0.00%
发文量
515
审稿时长
11 weeks
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