基于半定规划的NLOS环境下目标跟踪

R. Vaghefi, R. Buehrer
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引用次数: 13

摘要

研究了非视距(NLOS)环境下的目标跟踪问题。目标跟踪有许多商业、民用和军事应用。在室内环境中,目标跟踪的精度受到很大的影响,因为室内环境中绝大多数的连接都是NLOS。提出了一种基于半定规划(SDP)的新型跟踪估计器,该估计器具有抑制非线性los传播的能力。该算法在不需要NLOS传播统计信息的情况下,结合目标的位置和速度对NLOS偏差进行估计。通过计算机模拟评估了所提出估计器的性能,其中光线追踪用于模拟NLOS偏差。在NLOS环境下,本文提出的SDP估计器优于经典的扩展卡尔曼滤波器以及其他最近提出的估计器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Target Tracking in NLOS Environments Using Semidefinite Programming
In this paper, the problem of target tracking in non-line-of-sight (NLOS) environments is investigated. Target tracking has many commercial, civilian, and military applications. The accuracy of target tracking is highly affected in indoor environments where the majority of connections are NLOS. A novel tracking estimator based on semidefinite programming (SDP) with ability to mitigate the NLOS propagation is derived. Requiring no statistical information about the NLOS propagation, the proposed SDP algorithm estimates the NLOS biases jointly with the location and velocity of the target. The performance of the proposed estimator is evaluated through computer simulations where ray tracing is used to simulate the NLOS biases. It will be shown that the proposed SDP estimator outperforms the classic extended Kalman filter as well as other recently proposed estimators in NLOS environments.
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