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Audio Based Handwriting Input for Tiny Mobile Devices

机译:微型移动设备的基于音频的手写输入

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The popularization of tiny mobile devices has raised the problem that it is hard to efficiently input messages via tiny keyboards or touch screens. In this paper, we present TableWrite, an audio-based handwriting input scheme, which allows users to input words to mobile devices by writing on tables with fingers. The key feature is that, once trained by a user, TableWrite does not require any retraining phase before each use. To reduce the impacts of audio signal's multipath propagation, we design multiple features that maintain consistency even when writing positions keep changing. We apply machine learning and gesture tracking techniques to further improve the accuracy of handwriting recognition. Our prototype system's experimental results show that the average accuracy of word recognition is around 90%-95% in lab environments, which validates the effectiveness of TableWrite.
机译:小型移动设备的普及提出了一个问题,即很难通过小型键盘或触摸屏有效地输入消息。在本文中,我们提出了TableWrite,这是一种基于音频的手写输入方案,它允许用户通过用手指在桌子上书写来向移动设备输入单词。关键功能是,一旦由用户培训,TableWrite在每次使用前都不需要任何重新培训阶段。为了减少音频信号多径传播的影响,我们设计了多个功能,即使写入位置不断变化,这些功能也可以保持一致性。我们应用机器学习和手势跟踪技术来进一步提高手写识别的准确性。我们的原型系统的实验结果表明,在实验室环境中,单词识别的平均准确度约为90 \\%-95 \\%,这证明了TableWrite的有效性。

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