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首页> 外文期刊>IEEE transactions on automation science and engineering >A Sensor Fusion Approach to Indoor Human Localization Based on Environmental and Wearable Sensors
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A Sensor Fusion Approach to Indoor Human Localization Based on Environmental and Wearable Sensors

机译:基于环境和可穿戴传感器的室内人定位传感器融合方法

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摘要

The goal of this paper is to localize a resident in indoor environments by using motion information from distributed environmental sensors and body activity information from wearable sensors. The passive infrared sensor nodes distributed in a home provide binary information about human motion in their field of views, while the wearable inertial measurement unit sensor node collects motion data that can be used in body activity recognition, walking velocity, and heading estimation. Basic human activities such as sitting, sleeping, standing, and walking are recognized. We proposed a particle filter-based sensor fusion algorithm that takes advantage of the human location/activity correlation in indoor environments to increase the localization accuracy. Experiments were conducted in a mock apartment testbed. We used the ground truth data obtained from a motion capture system to evaluate the results.
机译:本文的目的是通过使用来自分布式环境传感器的运动信息和来自可穿戴传感器的身体活动信息来定位室内环境中的居民。分布在房屋中的无源红外传感器节点在其视野中提供有关人类运动的二进制信息,而可穿戴惯性测量单元传感器节点则收集可用于身体活动识别,步行速度和航向估计的运动数据。人们已经认识到基本的人类活动,例如坐着,睡觉,站立和步行。我们提出了一种基于粒子过滤器的传感器融合算法,该算法利用了室内环境中人类位置/活动的相关性来提高定位精度。实验是在模拟公寓的测试台上进行的。我们使用从运动捕捉系统获得的地面真实数据来评估结果。

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