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A tracker based on a CPHD filter approach for infrared applications

机译:一种基于CPHD滤波器方法的追踪器,用于红外应用程序

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Since the derivation of PHD filter, a number of track management schemes have been proposed to adapt the PHD filter for determining the tracks of multiple objects. Nevertheless, the problem remains that such approaches can fail when targets are too close or are crossing. In this paper, we propose to improve the tracking by maintaining a set of locally-based trackers and managing the tracks with an assignment method. Furthermore, the new algorithm is based on a Gaussian mixture implementation of the CPHD filter, by clustering neighbouring Gaussians before the update step and updating each cluster with the CPHD filter update. In order to be computationally efficient, the algorithm includes gating techniques for the local trackers and constructs local cardinality distributions for the targets and clutter within the gated regions. An improvement in multi-object estimation performance has been experienced on both synthetic and real IR data scenarios.
机译:由于PHD滤波器的推导,已经提出了许多轨道管理方案来调整PHD滤波器以确定多个对象的轨道。然而,问题仍然是,当目标太近或过于交叉时,这种方法可能会失败。在本文中,我们建议通过维护一组基于局部的跟踪器来改进跟踪,并通过分配方法管理轨道。此外,新算法基于CPHD滤波器的高斯混合实现,通过在更新步骤之前群集相邻的高斯群体和使用CPHD过滤器更新更新每个群集。为了计算效率,该算法包括用于本地跟踪器的门控技术,并在门控区域内构建针对目标和杂波的局部基数分布。在合成和真正的IR数据场景中都经历了多目标估计性能的改进。

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