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A Filtering Algorithm for Maneuvering Target Tracking Based on Smoothing Spline Fitting

机译:基于平滑样条拟合的机动目标跟踪滤波算法

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摘要

Maneuvering target tracking is a challenge. Target’s sudden speed or direction changing would make the common filtering tracker divergence. To improve the accuracy of maneuvering target tracking, we propose a tracking algorithm based on spline fitting. Curve fitting, based on historical point trace, reflects the mobility information. The innovation of this paper is assuming that there is no dynamic motion model, and prediction is only based on the curve fitting over the measured data. Monte Carlo simulation results show that, when sea targets are maneuvering, the proposed algorithm has better accuracy than the conventional Kalman filter algorithm and the interactive multiple model filtering algorithm, maintaining simple structure and small amount of storage.
机译:机动目标跟踪是一个挑战。目标的突然速度或方向变化会导致常见的过滤跟踪器出现偏差。为了提高机动目标跟踪的准确性,提出了一种基于样条拟合的跟踪算法。基于历史点轨迹的曲线拟合反映了迁移率信息。本文的创新是假设没有动态运动模型,并且预测仅基于对测量数据的曲线拟合。蒙特卡罗仿真结果表明,在操纵海上目标时,与传统的卡尔曼滤波算法和交互式多模型滤波算法相比,该算法具有更好的精度,且结构简单,存储量小。

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