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Dataset of Pakistan Sign Language and Automatic Recognition of Hand Configuration of Urdu Alphabet through Machine Learning

机译:通过机器学习,巴基斯坦的数据集和自动识别Urdu字母的手部配置

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Social correspondence is one of the most significant columns that the public dependent on. Notably, language is the best way to communicate and associate with one another both verbally and nonverbally. There is a persistent communication gap among deaf and non-deaf communities because non-deaf people have less understanding of sign languages. Every region/country has its sign language. In Pakistan, the sign language of Urdu is a visual gesture language that is being used for communication among deaf peoples. However, the dataset of Pakistan Sign Language (PSL) is not available publicly. The dataset of PSL has been generated by acquiring images of different hand configurations through a webcam. In this work, 40 images of each hand configuration with multiple orientations have been captured. In addition, we developed, an interactive android mobile application based on machine learning that minimized the communication barrier between the deaf and non-deaf communities by using the PSL dataset. The android application recognizes the Urdu alphabet from input hand configuration.
机译:社会对应是公众依赖的最重要的专栏之一。值得注意的是,语言是口头和非易性地互相互动和关联的最佳方法。聋人和非聋人社区之间存在持续的沟通缺口,因为非聋人对符号语言的理解较少。每个地区/国家都有它的手语。在巴基斯坦,Urdu的手语是一种视觉手势语言,用于聋人人民之间的沟通。但是,巴基斯坦手语(PSL)的数据集不公开。通过通过网络摄像头获取不同的手配置的图像来生成PSL的数据集。在这项工作中,已经捕获了40个具有多种方向的每只手配置的图像。此外,我们开发了一种基于机器学习的交互式Android移动应用程序,可通过使用PSL数据集最小化聋人和非聋社群之间的通信屏障。 Android应用程序从输入手配置中识别URDU字母。

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