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Robust track-to-track association in the presence of sensor biases and missed detections

机译:在存在传感器偏差和检测遗漏的情况下,鲁棒的轨道间关联

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The paper addresses the problem of robust track-to-track association in the presence of sensor biases and missed detections. Under the condition of large range biases with sensors, it is validated that the structural difference between two sets of local tracks from different sensors can be described by a non-rigid transformation. After that, we turn the robust track-to-track association problem into the non-rigid point matching problem in the framework of TPS-RPM (Thin Plate Spline-Robust Point Matching). Further, to improve the performance of the track-to-track association, the structural feature is introduced for each local track, and the structural similarity is incorporated by regularizing the energy function of the TPS-RPM algorithm. Simulation results demonstrate the effectiveness of the proposed approaches compared with competing algorithms. (C) 2015 Elsevier B.V. All rights reserved.
机译:该论文解决了在存在传感器偏置和检测遗漏的情况下鲁棒的轨道间关联性问题。在传感器存在大范围偏差的条件下,已验证可以通过非刚性变换来描述来自不同传感器的两组局部轨迹之间的结构差异。之后,在TPS-RPM(薄板样条-稳健点匹配)框架下,将鲁棒的轨迹间关联问题转化为非刚性点匹配问题。此外,为了提高轨道间关联的性能,为每个局部轨道引入了结构特征,并通过对TPS-RPM算法的能量函数进行正则化来引入结构相似性。仿真结果证明了所提出方法与竞争算法相比的有效性。 (C)2015 Elsevier B.V.保留所有权利。

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