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Bangla Sign Language Recognition and Sentence Building Using Deep Learning

机译:孟加拉语手语识别和句子建设使用深度学习

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Modern age being the era of Information technology, it would not have come this far without the piled up data or information. Whereas communication is the basis of collecting or gathering data or information, almost 5% of the world’s population is not blessed with the ability of verbal communication [1]. Sign language varies from the verbal language in every form and rule. This creates a gap between people conversing in verbal language and those communicating in sign language. Verbal languages are easy to interpret for having a common rule-following but sign language differs from region to region. This hampers the communication between normal people and those interacting in sign languages. Human to human interpretation is tough because of the enriched word wise signs and vocabs. To eradicate this issue, we are proposing a machine-based approach for training and detecting the Bangla Sign Language. Our aim is to create a multi modal system to for recognising Bangla signs. In addition, we hope to train the system with enough samples containing different signs used in Bangla Sign Language. In this research, we are using the Convolutional Neural Network (CNN) for training each individual sign. In addition to working as a medium of communication between the deaf and mute with the remaining society, this approach would also serve as a tool for the hearing deprived to learn and use the sign language properly.
机译:现代时代是信息技术的时代,它不会在没有堆积的数据或信息的情况下实现这一目标。虽然沟通是收集或收集数据或信息的基础,但近5%的世界人口的人口并不符合口头通信的能力[1]。手语在每个形式和规则中的语言语言都不同。这在人们以口头语言和沟通手语沟通的人之间造成了差距。口头语言很容易解释具有常见规则的惯例,但标志语言与区域的不同之处不同。这妨碍了正常人与人物之间的沟通和以标志语言交互的人。由于丰富的词语标志和词汇,人类对人类解释是艰难的。为了消除这个问题,我们提出了一种基于机器的培训方法,用于培训和检测Bangla手语。我们的目标是创建一个多模态系统,以识别Bangla标志。此外,我们希望用足够的样品训练包含在孟加拉语手语中使用的不同迹象的样本。在这项研究中,我们正在使用卷积神经网络(CNN)来培训每个人的迹象。除了用聋人与剩下的社会之间的沟通的媒介工作之外,这种方法还将作为听力剥夺的工具,以便正确地学习和使用手语。

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