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Improved Density Assisted Particle Filtering for Target Tracking in an Asynchronous Wireless Sensor Netwok

机译:改进的密度辅助粒子滤波在异步无线传感器网络中的目标跟踪

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Target tracking in a wireless sensor network (WSN) has become a relatively standard problem. In an asynchronous WSN, combined estimation of the target state and static clock offsets is necessary as the local clocks of the sensors are misaligned and the corresponding offsets are unknown. In this paper, a new tracking algorithm based on density assisted particle filtering (DAPF) and a sliding window is proposed. The sliding window calculates the reliability of the estimated sensor offsets and decides when to stop estimating them. Simulation results indicate that the improved DAPF algorithm we proposed can achieve high accuracy as standard DAPF but effectively saves the computing cost.
机译:无线传感器网络中的目标跟踪(WSN)已成为一个相对标准的问题。在异步WSN中​​,当传感器的本地时钟未对准并且相应的偏移是未知的,所需的目标状态和静态时钟偏移的组合估计是必要的。本文提出了一种基于密度辅助颗粒滤波(DAPF)和滑动窗口的新型跟踪算法。滑动窗口计算估计的传感器偏移的可靠性,并决定何时停止估计它们。仿真结果表明,我们提出的改进的DAPF算法可以实现高精度作为标准DAPF,但有效地节省了计算成本。

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