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Segmentation and recognition of human motion sequences using wearable inertial sensors

机译:使用可穿戴式惯性传感器对人体运动序列进行分割和识别

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The application of human motion monitoring technology based on wearable inertial sensors has achieved great success in the last ten years. But now the research is mainly focused on isolated motion recognition, and there is scarce research on recognition of human motion sequences. In this paper a novel monitoring framework of human motion sequences is proposed based on wearable inertial sensors. The monitoring framework is composed of data acquisition, segmentation, and recognition stages; the main work of this paper is the last two parts. At the segmentation stage, SVD is used to perform pre-segmentation of motion sequence and its purpose is to reduce time in the segmentation process as much as possible. Then a novel similarity measure named MSHsim, is proposed to accomplish the fine segmentation. At the recognition stage an HMM is used to recognize the motion sequence. We use four inertial sensors to collect the human motion data. Experiments are implemented to evaluate the performance of the proposed monitoring framework, and from the experiment results, it can be seen that the proposed method may achieve better performance compared to other methods.
机译:在过去的十年中,基于可穿戴惯性传感器的人体运动监控技术的应用取得了巨大的成功。但是现在的研究主要集中在孤立的运动识别上,而关于人类运动序列识别的研究却很少。本文提出了一种基于可穿戴惯性传感器的新型人体运动序列监测框架。监控框架由数据采集,分段和识别阶段组成;本文的主要工作是最后两部分。在分割阶段,SVD用于执行运动序列的预分割,其目的是尽可能减少分割过程中的时间。然后提出了一种新的相似度度量MSHsim,以完成精细分割。在识别阶段,使用HMM识别运动序列。我们使用四个惯性传感器来收集人体运动数据。通过实验评估了所提出的监控框架的性能,从实验结果可以看出,与其他方法相比,所提出的方法可以获得更好的性能。

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