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Energy-Efficient Real-Time Human Activity Recognition on Smart Mobile Devices

机译:智能移动设备上的高能效实时人类活动识别

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摘要

Nowadays, human activity recognition (HAR) plays an important role inwellness-care and context-aware systems. Human activities can be recognized in real-time by using sensory data collected from various sensors built in smart mobile devices. Recent studies have focused on HAR that is solely based on triaxial accelerometers, which is the most energy-efficient approach. However, such HAR approaches are still energy-inefficient because the accelerometer is required to run without stopping so that the physical activity of a user can be recognized in real-time. In this paper, we propose a novel approach for HAR process that controls the activity recognition duration for energy-efficient HAR. We investigated the impact of varying the acceleration-sampling frequency and window size for HAR by using the variable activity recognition duration (VARD) strategy. We implemented our approach by using an Android platform and evaluated its performance in terms of energy efficiency and accuracy. The experimental results showed that our approach reduced energy consumption by a minimum of about 44.23% andmaximum of about 78.85% compared to conventional HAR without sacrificing accuracy.
机译:如今,人类活动识别(HAR)在健康护理和情境感知系统中扮演着重要角色。通过使用从智能移动设备中内置的各种传感器收集的感官数据,可以实时识别人类活动。最近的研究集中于仅基于三轴加速度计的HAR,这是最节能的方法。然而,由于需要加速计不停止地运行,所以这样的HAR方法仍然是能量效率低的,从而可以实时识别用户的身体活动。在本文中,我们提出了一种用于HAR过程的新方法,该方法可控制节能HAR的活动识别持续时间。我们研究了通过使用可变活动识别持续时间(VARD)策略来改变HAR的加速度采样频率和窗口大小的影响。我们使用Android平台实施了该方法,并在能效和准确性方面评估了其性能。实验结果表明,与传统的HAR相比,我们的方法可将能耗至少降低约44.23%,最大降低约78.85%,而不会牺牲准确性。

著录项

  • 来源
    《Mobile Information Systems》 |2016年第3期|2316757.1-2316757.12|共12页
  • 作者

    Lee Jin; Kim Jungsun;

  • 作者单位

    Hanyang Univ, Dept Comp Sci & Engn, Ansan 15588, Gyeonggi Do, South Korea;

    Hanyang Univ, Dept Comp Sci & Engn, Ansan 15588, Gyeonggi Do, South Korea;

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