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Distributed algorithm of subgradient optimization for localization based on received signal strength in wireless network

机译:无线网络中基于接收信号强度的次梯度优化分布式算法

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In this paper, we propose a subgradient optimization method for pedestrian localization based on received signal strength in wireless network. The objective function of weighted least-squares estimation is adopted, which shows good convexity and has immunity to shadowing effect. We also approximate the subgradient of the objective function by a recursive form so that it can be implemented in a decentralized manner within each sensing node. A variable step size is proposed to take into consideration both the subgradient and minimum adjustment to accelerate convergence. Furthermore, the convergence analysis is also given to show the feasibility of our design for the step size. From simulation results, we can see the proposed algorithm has better accuracy and convergence rate than the conventional decentralized algorithms to localize a stationary or moving target in wireless network.
机译:本文提出了一种基于无线网络中接收信号强度的行人定位的次梯度优化方法。采用加权最小二乘估计的目标函数,该函数具有良好的凸性,并且不受阴影影响。我们还通过递归形式近似目标函数的次梯度,以便可以在每个传感节点内以分散的方式实现目标函数。建议使用可变步长,以同时考虑次梯度和最小调整,以加速收敛。此外,还进行了收敛性分析,以表明我们设计步长的可行性。从仿真结果可以看出,与传统的分散算法在无线网络中定位静止或运动目标相比,该算法具有更好的精度和收敛速度。

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