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Mobile device to cloud co-processing of ASL finger spelling to text conversion

机译:移动设备到云协同处理ASL手指拼写到文本转换

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摘要

Computer recognition of American Sign Language (ASL) is a computationally intensive task. This research investigates transcription of static ASL signs on a consumer-level mobile device. The application provides real-time sign to text translation by processing a live video stream to detect the ASL alphabet as well as custom signs to perform tasks on the device. The chosen classification algorithm uses Locality Preserving Projections (LPP) as manifold learning along with Support Vector Machine (SVM) multi-class classification. The algorithm is contrasted with and without cloud assistance. In comparison to the local mobile application, the cloud-assisted application increased classification speed, reduced memory us-age, and kept the network usage low while barely increasing the power required.
机译:计算机识别美国手语(ASL)是一个计算密集的任务。本研究研究了静态ASL标志对消费级移动设备的转录。该应用程序通过处理实时视频流来检测ASL字母以及自定义标志来提供实时符号来进行文本转换,以便在设备上执行任务。所选择的分类算法使用位置保存投影(LPP)作为歧管学习以及支持向量机(SVM)多级分类。该算法与云辅助形成鲜明对比。与本地移动应用程序相比,云辅助应用程序增加了分类速度,减少了内存US - 时代,并保持了网络使用率低,同时几乎不增加所需的电力。

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