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R-means localization: A simple iterative algorithm for range-difference-based source localization

机译:R均值定位:基于距离差异的源定位的简单迭代算法

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In this paper, we present a simple iterative algorithm for range-difference (RD) based localization. The RD-based localization is a kind of nonlinear optimization problem and generally it has no closed-form solution. Through auxiliary function approach, we derive iterative update rules without any tuning parameters, which just consists of 1) averaging source-sensor distances, 2) averaging the source positions estimated by updating source-sensor distance on each sensor with the source-direction fixed. Due to the resemblance of the iterative averaging to k-means clustering, we call it r-means localization. The convergence of the algorithm is guaranteed. The acceleration of the convergence is also investigated.
机译:在本文中,我们提出了一种基于距离差(RD)的简单迭代算法。基于RD的定位是一种非线性优化问题,通常没有封闭形式的解决方案。通过辅助函数方法,我们导出了没有任何调整参数的迭代更新规则,该规则仅包括1)平均源传感器距离,2)平均通过更新每个传感器上的源传感器距离而固定源方向而估算出的源位置。由于迭代平均与k均值聚类相似,我们称其为r均值定位。保证了算法的收敛性。还研究了收敛的加速。

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