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首页> 外文期刊>Sensors Journal, IEEE >Tracking of Mobile Sensors Using Belief Functions in Indoor Wireless Networks
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Tracking of Mobile Sensors Using Belief Functions in Indoor Wireless Networks

机译:室内无线网络中使用信念功能的移动传感器跟踪

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Localization of mobile sensors is an important research issue in wireless sensor networks. Most indoor localization schemes focus on determining the exact position of these sensors. This paper presents a zoning-based tracking technique that works efficiently in indoor environments. The targeted area is composed of several zones, the objective being to determine the zone of the mobile sensor in a real time tracking process. The proposed method creates a belief functions framework that combines evidence using the sensors mobility and observations. To do this, a mobility model is proposed by using the previous state of the sensor and its assumed maximum speed. Also, an observation model is constructed based on fingerprints collected as Wi-Fi signals strengths received from surrounding access points. This model can be extended via hierarchical clustering and access point selection. Real experiments demonstrate the effectiveness of this approach and its competence compared with state-of-the-art methods.
机译:移动传感器的本地化是无线传感器网络中的重要研究课题。大多数室内定位方案都专注于确定这些传感器的确切位置。本文提出了一种基于分区的跟踪技术,该技术可以在室内环境中有效地工作。目标区域由几个区域组成,目的是在实时跟踪过程中确定移动传感器的区域。所提出的方法创建了一个信念函数框架,该框架使用传感器的移动性和观察力将证据结合在一起。为此,通过使用传感器的先前状态及其假定的最大速度来提出移动性模型。此外,基于从周围接入点接收到的作为Wi-Fi信号强度的指纹构建观察模型。可以通过分层聚类和访问点选择来扩展此模型。实际实验表明,与最新方法相比,该方法的有效性及其竞争力。

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