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Track segment association, fine-step IMM and initialization with Doppler for improved track performance

机译:轨道段关联,精细的IMM和多普勒初始化,以改善轨道性能

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摘要

In this work we present a new track segment association technique to improve track continuity in large-scale target tracking problems where track breakages are common. A representative airborne early warning (AEW) system scenario, which is a challenging environment due to highly maneuvering targets, close target formations, large measurement errors, long sampling intervals, and low detection probabilities, provides the motivation for the new technique. Previously, a tracker using the interacting multiple model (IMM) estimator combined with an assignment algorithm was shown to be more reliable than a conventional Kalman filter based approach in tracking similar targets but it still yielded track breakages due to the difficult environment. In order to combine the broken track segments and improve track continuity, a new track segment association algorithm using a discrete optimization approach is presented. Simulation results show that track segment association yields significant improvements in mean track life as well as in position, speed, and course rms errors. Also presented is a modified one-point initialization technique with range rate measurements, which are typically ignored by other initialization techniques, and a fine-step IMM estimator, which improves performance in the presence of long revisit intervals. Another aspect that is investigated is the benefit of "deep" (multiframe or N-dimensional, with N > 2) association, which is shown to yield significant benefit in reducing the number of false tracks.
机译:在这项工作中,我们提出了一种新的航迹线段关联技术,以提高在经常发生航迹破损的大规模目标跟踪问题中的航迹连续性。具有代表性的机载预警(AEW)系统场景由于具有高度机动性的目标,密集的目标编队,较大的测量误差,较长的采样间隔和较低的检测概率,因此具有挑战性,为新技术提供了动力。以前,使用交互式多模型(IMM)估计器与分配算法相结合的跟踪器在跟踪相似目标方面显示出比传统的基于Kalman滤波器的方法更可靠,但由于环境恶劣,它仍然会造成跟踪中断。为了结合破碎的轨道段并提高轨道的连续性,提出了一种使用离散优化方法的新的轨道段关联算法。仿真结果表明,航迹段关联可显着改善平均航迹寿命以及位置,速度和航向均方根误差。还介绍了一种经过修改的具有范围速率测量的单点初始化技术(通常被其他初始化技术所忽略),以及一种细步长的IMM估计器,该方法可在长访问间隔的情况下提高性能。研究的另一个方面是“深度”(多帧或N维,N≥2的N维)关联的好处,这显示出在减少错误磁道数量方面产生了明显的好处。

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