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Localization of multiple disjoint sources with prior knowledge on source locations in the presence of sensor location errors

机译:在存在传感器位置错误的情况下使用源位置的先验知识定位多个不相交的源

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Sensor location errors are known to be able to degrade the source localization accuracy significantly. This paper considers the problem of localizing multiple disjoint sources where prior knowledge on the source locations is available to mitigate the effect of sensor location uncertainty. The error in the priorly known source location is assumed to follow a zero-mean Gaussian distribution. When a source location is completely unknown, the covariance matrix of its prior location would go to infinity. The localization of multiple disjoint sources is achieved through exploring the time difference of arrival (TDOA) and the frequency difference of arrival (FDOA) measurements. In this work, we derive the Cramer-Rao lower bound (CRLB) of the source location estimates. The CRLB is shown analytically to be able to unify several CRLBs introduced in literature. We next compare the localization performance when multiple source locations are determined jointly and individually. In the presence of sensor location errors, the superiority of joint localization of multiple sources in terms of greatly improved localization accuracy is established. Two methods for localizing multiple disjoint sources are proposed, one for the case where only some sources have prior location information and the other for the scenario where all sources have prior location information. Both algorithms can reach the CRLB accuracy when sensor location errors are small. Simulations corroborate the theoretical developments. (C) 2015 Elsevier Inc. All rights reserved.
机译:已知传感器位置错误会严重降低源定位精度。本文考虑了对多个不相交的源进行本地化的问题,其中可以使用源位置的先验知识来减轻传感器位置不确定性的影响。假定先前已知源位置中的误差遵循零均值高斯分布。当源位置完全未知时,其先前位置的协方差矩阵将变为无穷大。通过探索到达时间差(TDOA)和到达频率差(FDOA)测量来实现多个不相交源的定位。在这项工作中,我们推导了源位置估计的Cramer-Rao下界(CRLB)。分析表明,CRLB能够统一文献中介绍的几种CRLB。接下来,当联合和单独确定多个源位置时,我们将比较本地化性能。在存在传感器位置错误的情况下,就大大提高了定位精度而言,建立了多个源的联合定位优势。提出了两种用于定位多个不相交源的方法,一种用于仅某些源具有先前位置信息的情况,另一种用于所有源具有先前位置信息的情况。当传感器位置误差较小时,两种算法都可以达到CRLB精度。模拟证实了理论发展。 (C)2015 Elsevier Inc.保留所有权利。

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