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Distributed RSS-Based Localization in Wireless Sensor Networks Based on Second-Order Cone Programming

机译:基于二阶锥规划的无线传感器网络中基于RSS的分布式本地化

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In this paper, we propose a new approach based on convex optimization to address the received signal strength (RSS)-based cooperative localization problem in wireless sensor networks (WSNs). By using iterative procedures and measurements between two adjacent nodes in the network exclusively, each target node determines its own position locally. The localization problem is formulated using the maximum likelihood (ML) criterion, since ML-based solutions have the property of being asymptotically efficient. To overcome the non-convexity of the ML optimization problem, we employ the appropriate convex relaxation technique leading to second-order cone programming (SOCP). Additionally, a simple heuristic approach for improving the convergence of the proposed scheme for the case when the transmit power is known is introduced. Furthermore, we provide details about the computational complexity and energy consumption of the considered approaches. Our simulation results show that the proposed approach outperforms the existing ones in terms of the estimation accuracy for more than 1.5 m. Moreover, the new approach requires a lower number of iterations to converge, and consequently, it is likely to preserve energy in all presented scenarios, in comparison to the state-of-the-art approaches.
机译:在本文中,我们提出了一种基于凸优化的新方法,以解决无线传感器网络(WSN)中基于接收信号强度(RSS)的协作定位问题。通过仅使用网络中两个相邻节点之间的迭代过程和测量,每个目标节点就可以在本地确定其自身位置。由于基于ML的解决方案具有渐近有效的特性,因此使用最大似然(ML)准则来制定定位问题。为了克服ML优化问题的非凸性,我们采用了导致第二阶锥规划(SOCP)的适当凸松弛技术。另外,引入了一种简单的启发式方法,用于在已知发射功率的情况下改善所提出方案的收敛性。此外,我们提供了有关所考虑方法的计算复杂性和能耗的详细信息。仿真结果表明,该方法在估计精度方面优于现有方法,超过了1.5 m。此外,与最新的方法相比,新方法需要较少的迭代次数即可收敛,因此,在所有提出的方案中都可能节省能量。

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