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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >IMM Filter Based Human Tracking Using a Distributed Wireless Sensor Network
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IMM Filter Based Human Tracking Using a Distributed Wireless Sensor Network

机译:使用分布式无线传感器网络的基于IMM筛选器的人体跟踪

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This paper proposes a human tracking approach in a distributed wireless sensor network. Most of the efforts on human tracking focus on vision techniques. However, most vision-based approaches to moving object detection involve intensive real-time computations. In this paper, we present an algorithm for human tracking using low-cost range wireless sensor nodes which can contribute lower computational burden based on a distributed computing system, while the centralized computing system often makes some information from sensors delay. Because the human target often moves with high maneuvering, the proposed algorithm applies the interacting multiple model (IMM) filter techniques and a novel sensor node selection scheme developed considering both the tracking accuracy and the energy cost which is based on the tacking results of IMM filter at each time step. This paper also proposed a novel sensor management scheme which can manage the sensor node effectively during the sensor node selection and the tracking process. Simulations results show that the proposed approach can achieve superior tracking accuracy compared to the most recent human motion tracking scheme.
机译:本文提出了一种分布式无线传感器网络中的人工跟踪方法。人类追踪的大部分努力都集中在视觉技术上。但是,大多数基于视觉的运动对象检测方法都涉及大量的实时计算。在本文中,我们提出了一种使用低成本范围无线传感器节点进行人体跟踪的算法,该算法可以基于分布式计算系统来降低计算负担,而集中式计算系统通常会从传感器延迟中获取一些信息。由于人类目标经常以高机动性移动,因此所提出的算法应用了交互多模型(IMM)滤波器技术,并且基于IMM滤波器的跟踪结果,在考虑跟踪精度和能源成本的情况下开发了一种新颖的传感器节点选择方案在每个时间步。本文还提出了一种新颖的传感器管理方案,该方案可以在传感器节点选择和跟踪过程中有效地管理传感器节点。仿真结果表明,与最新的人体运动跟踪方案相比,该方法可以实现更高的跟踪精度。

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