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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Cooperative RSS-Based Localization in Wireless Sensor Networks Using Relative Error Estimation and Semidefinite Programming
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Cooperative RSS-Based Localization in Wireless Sensor Networks Using Relative Error Estimation and Semidefinite Programming

机译:基于相对误差估计和半定规划的无线传感器网络中基于协作RSS的定位

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摘要

A new cooperative received signal strength-based localization algorithm is proposed which employs relative error estimation and semidefinite programming (SDP). First, the log-normal shadowing RSS measurement model is transformed into an equivalent multiplicative model. Then, a relative error estimation criterion is used with this model to develop a nonconvex estimator to approximate the maximum likelihood solution. Finally, semidefinite relaxation is applied to the nonconvex estimator to obtain an SDP estimator. The proposed algorithm is first derived for noncooperative RSS-based localization and then extended to the cooperative case. The Cramer-Rao lower bound is derived for cooperative RSS-based localization. Performance results are presented, which demonstrate that the proposed SDP estimator provides a significant improvement over existing localization methods.
机译:提出了一种新的基于协作接收信号强度的定位算法,该算法采用相对误差估计和半定规划(SDP)。首先,将对数正态阴影RSS测量模型转换为等效的乘法模型。然后,将相对误差估计准则与此模型一起使用,以开发一个非凸估计量,以近似最大似然解。最后,将半定松弛应用于非凸估计量以获得SDP估计量。首先针对非合作的基于RSS的定位推导所提出的算法,然后将其扩展到合作案例。推导出Cramer-Rao下界用于基于RSS的协作式本地化。给出了性能结果,表明所建议的SDP估计器相对于现有的本地化方法提供了显着的改进。

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