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Spelling it out: Real-time ASL fingerspelling recognition

机译:清楚说明:实时ASL手指拼写识别

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摘要

This article presents an interactive hand shape recognition user interface for American Sign Language (ASL) finger-spelling. The system makes use of a Microsoft Kinect device to collect appearance and depth images, and of the OpenNI+NITE framework for hand detection and tracking. Hand-shapes corresponding to letters of the alphabet are characterized using appearance and depth images and classified using random forests. We compare classification using appearance and depth images, and show a combination of both lead to best results, and validate on a dataset of four different users. This hand shape detection works in real-time and is integrated in an interactive user interface allowing the signer to select between ambiguous detections and integrated with an English dictionary for efficient writing.
机译:本文介绍了用于美国手语(ASL)手指拼写的交互式手形识别用户界面。该系统利用Microsoft Kinect设备收集外观和深度图像,并利用OpenNI + NITE框架进行手部检测和跟踪。对应于字母的手形使用外观和深度图像进行特征描述,并使用随机森林进行分类。我们使用外观和深度图像比较分类,并显示两种组合可获得最佳结果,并在四个不同用户的数据集上进行验证。这种手部形状检测是实时工作的,并集成在一个交互式用户界面中,使签名人可以在模棱两可的检测之间进行选择,并与英语词典集成在一起以提高书写效率。

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