Model-based trajectory reconstruction using IMM smoothing and motion pattern identification

Jesús García, J. M. Molina, J. Besada, G. D. Miguel
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引用次数: 13

Abstract

This work addresses off-line accurate trajectory reconstruction for air traffic control. We propose the use of specific dynamic models after identification of regular motion patterns. Datasets recorded from opportunity traffic are first segmented in motion segments, based on the mode probabilities of an IMM filter. Then, reconstruction is applied with an optimal smoothing filter operating forward and backward. The parameters describing the specific modes are estimated and then used as external input for smoothing filters. The performance of this approach is compared with a method based on interpolation B-splines. Comparative results on simulated and real data are discussed at the end.
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基于模型的基于IMM平滑和运动模式识别的轨迹重建
这项工作解决了空中交通管制的离线精确轨迹重建问题。我们建议在确定规则运动模式后使用特定的动态模型。根据IMM滤波器的模式概率,从机会流量记录的数据集首先被分割为运动段。然后,利用最优的正向和反向平滑滤波器进行重构。估计描述特定模式的参数,然后将其用作平滑滤波器的外部输入。将该方法与基于插值b样条的方法进行了性能比较。最后讨论了仿真数据和实际数据的对比结果。
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