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Indoor human tracking and state estimation by fusing environmental sensors and wearable sensors

机译:通过融合环境传感器和可穿戴式传感器进行室内人体跟踪和状态估计

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In this paper, we aim to track a human's indoor location while estimating his/her behavioral state. We use environmental PIR sensors to localize the individual and assume that the position of the individual obeys the bivariate Gaussian distribution, which can be used to improve the tracking accuracy. At the same time we introduce a wearable acceleration sensor to estimate the human's state. The hardware setup consists of two types of sensor: passive infrared sensors and a three-axis acceleration sensor with built-in bluetooth communication. By comparing the tracking performance between the PIR sensor-based algorithm and the fusion-based algorithm, we find that the latter has less errors. This indoor localization system can be used in future smart homes.
机译:在本文中,我们旨在跟踪人的室内位置,同时估计其行为状态。我们使用环境PIR传感器对个体进行定位,并假设个体的位置服从双变量高斯分布,这可以用来提高跟踪精度。同时,我们引入了可穿戴式加速度传感器来估计人的状态。硬件设置包括两种类型的传感器:无源红外传感器和具有内置蓝牙通信的三轴加速度传感器。通过比较基于PIR传感器的算法和基于融合的算法之间的跟踪性能,我们发现后者具有较少的误差。这种室内定位系统可以在未来的智能家居中使用。

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