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Reverse recognition of body postures using on-body radio channel characteristics

机译:使用人体无线电信道特性反向识别身体姿势

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摘要

The problem of posture detection is of considerable significance for assisted living (AL). In most cases, radio channel models for wireless body area network (WBANs) are fixed when a specific body posture is considered. To the best of the authors' knowledge, little work has been done on the reverse body posture information extraction using WBAN radio channel characteristics. This study aims to classify human postures from on-body narrowband wireless channel information. It is demonstrated that by applying the random forest (RF) classification technique, the action of the human body can be detected. The classification error is perfectly acceptable for RF algorithm. Two propagation environments were compared and the results indicate that the classification error is less in the anechoic chamber (21.39%). In summary, this study provides a novel approach to detect human body postures by using body-centric wireless channel information, and will be beneficial for AL.
机译:姿势检测的问题对于辅助生活(AL)具有重要意义。在大多数情况下,当考虑特定的身体姿势时,用于无线人体局域网(WBAN)的无线电信道模型是固定的。据作者所知,使用WBAN无线电信道特征进行反向身体姿势信息提取的工作很少。这项研究旨在根据人体窄带无线信道信息对人体姿势进行分类。结果表明,通过应用随机森林(RF)分类技术,可以检测到人体的动作。对于RF算法,分类误差是完全可以接受的。比较了两种传播环境,结果表明在消声室中分类误差较小(21.39%)。总而言之,这项研究提供了一种通过使用以身体为中心的无线信道信息来检测人体姿势的新颖方法,将对AL有所帮助。

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