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Recognition of Daily Human Activity Using an Artificial Neural Network and Smartwatch

机译:使用人工神经网络和Smartwatch识别日常人类活动

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Human activity recognition using wearable devices has been actively investigated in a wide range of applications. Most of them, however, either focus on simple activities wherein whole body movement is involved or require a variety of sensors to identify daily activities. In this study, we propose a human activity recognition system that collects data from an off-the-shelf smartwatch and uses an artificial neural network for classification. The proposed system is further enhanced using location information. We consider 11 activities, including both simple and daily activities. Experimental results show that various activities can be classified with an accuracy of 95%.
机译:使用可穿戴设备的人类活动识别已在广泛的应用中得到积极研究。然而,它们中的大多数要么专注于涉及全身运动的简单活动,要么需要各种传感器来识别日常活动。在这项研究中,我们提出了一种人类活动识别系统,该系统可以从现成的智能手表中收集数据,并使用人工神经网络进行分类。使用位置信息进一步增强了所提出的系统。我们考虑11种活动,包括简单活动和日常活动。实验结果表明,可以将各种活动分类为95%的准确性。

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