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Calibrating the error from sensor position uncertainty in TDOA-AOA localization

机译:校准TDOA-AOA定位中传感器位置不确定性引起的误差

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摘要

The performance of unknown source localization degrades significantly when random sensor position errors exist. In this paper, a calibration source, whose position is known precisely or imprecisely, is introduced into the hybrid TDOA-AOA localization to alleviate the accuracy loss caused by erroneous sensor positions. The performance improvement, attributed to the use of a calibration source, is derived in terms of Cramer-Rao lower bound (CRLB). To get insight into the use of a calibration source, the optimum placement of a calibration source for TDOA-AOA localization in the presence of sensor position errors is investigated. Two closed-form localization algorithms, both composed of two stages, are proposed for the two different cases. In both algorithms, the sensor position errors are corrected through the calibration source in the first stage, and the location of the unknown source is then estimated from the TDOA-AOA measurements in the second stage. The theoretical analysis shows the proposed algorithms attain the CRLB accuracy when sensor position errors and measurement noises are relatively small. Simulations validate the analytical results and the performance of the proposed algorithms. (C) 2019 Elsevier B.V. All rights reserved.
机译:当存在随机传感器位置错误时,未知源定位的性能会大大降低。在本文中,将位置精确或不精确知道的校准源引入到混合TDOA-AOA定位中,以减轻由错误的传感器位置引起的精度损失。通过使用Cramer-Rao下界(CRLB),可以归因于使用校准源而带来的性能改进。为了深入了解校准源的使用,研究了存在传感器位置误差时用于TDOA-AOA定位的校准源的最佳放置。针对两种不同情况,提出了两种均由两个阶段组成的闭式定位算法。在这两种算法中,传感器位置误差在第一阶段通过校准源进行校正,然后在第二阶段从TDOA-AOA测量值估计未知源的位置。理论分析表明,当传感器位置误差和测量噪声相对较小时,所提算法可以达到CRLB精度。仿真验证了分析结果和所提出算法的性能。 (C)2019 Elsevier B.V.保留所有权利。

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