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An Online Human Activity Recognizer for Mobile Phones with Accelerometer

机译:带加速度计的手机在线人类活动识别器

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We propose a novel human activity recognizer for an application for mobile phones. Since such applications should not consume too much electric power, our method should have not only high accuracy but also low electric power consumption by using just a single three-axis accelerometer. In feature extraction with the wavelet transform, we employ the Haar mother wavelet that allows low computational complexity. In addition, we reduce dimensions of features by using the singular value decomposition. In spite of the complexity reduction, we discriminate a user's status into walking, running, standing still and being in a moving train with an accuracy of over 90%.
机译:我们提出了一种新颖的人类活动识别器,用于手机应用程序。由于此类应用不应消耗过多的电能,因此,仅使用单个三轴加速度计,我们的方法不仅应具有较高的精度,而且还应具有较低的电能消耗。在利用小波变换进行特征提取中,我们采用了Haar母小波,它具有较低的计算复杂度。此外,我们通过使用奇异值分解来减少要素的尺寸。尽管降低了复杂性,但我们仍将用户的状态区分为步行,跑步,站立和处于行驶中的火车,其准确率超过90%。

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