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An Easily Customized Gesture Recognizer for Assisted Living Using Commodity Mobile Devices

机译:一种易于定制的手势识别器,用于辅助使用商品移动设备辅助

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Automatic gesture recognition is an important field in the area of human-computer interaction. Until recently, the main approach to gesture recognition was based mainly on real time video processing. The objective of this work is to propose the utilization of commodity smartwatches for such purpose. Smartwatches embed accelerometer sensors, and they are endowed with wireless communication capabilities (primarily Bluetooth), so as to connect with mobile phones on which gesture recognition algorithms may be executed. The algorithmic approach proposed in this paper accepts as the input readings from the smartwatch accelerometer sensors and processes them on the mobile phone. As a case study, the gesture recognition application was developed for Android devices and the Pebble smartwatch. This application allows the user to define the set of gestures and to train the system to recognize them. Three alternative methodologies were implemented and evaluated using a set of six 3-D natural gestures. All the reported results are quite satisfactory, while the method based on SAX (Symbolic Aggregate approximation) was proven the most efficient.
机译:自动手势识别是人机相互作用领域的重要领域。直到最近,手势识别的主要方法主要基于实时视频处理。这项工作的目的是提出用于此目的的商品Smartwatches。 SmartWatches嵌入加速度计传感器,它们是赋予无线通信功能(主要是蓝牙),以便与可以执行手机上的移动电话连接。本文提出的算法方法接受了SmartWatch加速度计传感器的输入读数,并在移动电话上处理它们。作为案例研究,为Android设备和Pebble SmartWatch开发了手势识别应用程序。此应用程序允许用户定义一组手势并训练系统识别它们。使用一组六个3-D天然手势实施并评估三种替代方法。所有报告的结果都非常令人满意,而基于SAX(符号集合近似)的方法被证明是最有效的。

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