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Autonomous Landmark Calibration Method for Indoor Localization

机译:室内定位的自主地标校准方法

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摘要

Machine-generated data expansion is a global phenomenon in recent Internet services. The proliferation of mobile communication and smart devices has increased the utilization of machine-generated data significantly. One of the most promising applications of machine-generated data is the estimation of the location of smart devices. The motion sensors integrated into smart devices generate continuous data that can be used to estimate the location of pedestrians in an indoor environment. We focus on the estimation of the accurate location of smart devices by determining the landmarks appropriately for location error calibration. In the motion sensor-based location estimation, the proposed threshold control method determines valid landmarks in real time to avoid the accumulation of errors. A statistical method analyzes the acquired motion sensor data and proposes a valid landmark for every movement of the smart devices. Motion sensor data used in the testbed are collected from the actual measurements taken throughout a commercial building to demonstrate the practical usefulness of the proposed method.
机译:机器生成的数据扩展是最近的Internet服务中的一种全球现象。移动通信和智能设备的激增极大地提高了机器生成数据的利用率。机器生成的数据最有希望的应用之一是智能设备位置的估计。集成到智能设备中的运动传感器生成连续数据,可用于估计室内环境中行人的位置。我们专注于通过确定适合位置误差校准的界标来估计智能设备的准确位置。在基于运动传感器的位置估计中,提出的阈值控制方法可实时确定有效界标,从而避免误差的累积。一种统计方法分析获取的运动传感器数据,并为智能设备的每次移动提出有效的界标。测试床中使用的运动传感器数据是从整个商业建筑的实际测量值中收集的,以证明所提出方法的实用性。

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