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Linear Least Squares Approach for Accurate Received Signal Strength Based Source Localization

机译:基于线性最小二乘法的精确接收信号强度源定位

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摘要

A conventional approach for passive source localization is to utilize signal strength measurements of the emitted source received at an array of spatially separated sensors. The received signal strength (RSS) information can be converted to distance estimates for constructing a set of circular equations, from which the target position is determined. Nevertheless, a major challenge in this approach lies in the shadow fading effect which corresponds to multiplicative measurement errors. By utilizing the mean and variance of the squared distance estimates, we devise two linear least squares (LLS) estimators for RSS-based positioning in this paper. The first one is a best linear unbiased estimator while the second is its improved version by exploiting the known relation between the parameter estimates. The variances of the position estimates are derived and confirmed by computer simulations. In particular, it is proved that the performance of the improved LLS estimator achieves Cramér–Rao lower bound at sufficiently small noise conditions.
机译:用于无源源定位的常规方法是利用在空间上分离的传感器的阵列处接收的发射源的信号强度测量。可以将接收信号强度(RSS)信息转换为距离估计,以构建一组循环方程,从中确定目标位置。然而,这种方法的主要挑战在于阴影衰减效果,其对应于乘法测量误差。通过利用平方距离估计的均值和方差,本文设计了两个线性最小二乘(LLS)估计器用于基于RSS的定位。第一个是最佳线性无偏估计器,第二个是通过利用参数估计之间的已知关系来改进的版本。位置估计的方差是通过计算机模拟得出并确认的。特别是,事实证明,改进的LLS估计器的性能在足够小的噪声条件下实现了Cramér-Rao下界。

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