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Human Activity Recognition: From Sensors to Applications

机译:人类活动识别:从传感器到应用程序

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Human activity recognition (HAR) being a dynamic research topic in recent decades due to its high demand in countless applications, for instance, in healthcare, gaming, security and surveillance, and sports. Despite the amount of work contributed by the researcher to this well-researched field, there are still many challenging aspects and open issues that should be addressed in future works. In this paper, the current state-of-the-art in HAR from three holistic aspects is surveyed: sensors, models, and open challenges. First, we summarize the existing sensory systems, including sensor-based, vision-based sensors, and multimodal solutions. Next, the recent advances in HAR algorithms - from hierarchical fusion methods to handcrafted features to deep features, traditional machine learning algorithms to deep learning techniques - are discussed. Finally, the principal issues and challenges that should be addressed in future research are discussed.
机译:由于人类活动识别(HAR)在医疗,游戏,安全和监视以及体育等众多应用中有很高的需求,因此在近几十年来一直是一个动态的研究主题。尽管研究人员在这个经过充分研究的领域做出了大量工作,但是在未来的工作中仍然存在许多具有挑战性的方面和未解决的问题。在本文中,从三个整体方面对HAR的最新技术进行了调查:传感器,模型和开放式挑战。首先,我们总结了现有的传感系统,包括基于传感器,基于视觉的传感器和多模式解决方案。接下来,讨论了HAR算法的最新进展-从分层融合方法到手工制作的特征再到深度特征,从传统的机器学习算法到深度学习技术。最后,讨论了未来研究中应解决的主要问题和挑战。

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