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Feature point tracking combining the Interacting Multiple Model filter and an efficient assignment algorithm

机译:相互作用多模型滤波器的特征点跟踪和高效分配算法

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An algorithm for feature point tracking is proposed. The Interacting Multiple Model (IMM) filter is used to estimate the state of a feature point. The problem of data association, i.e. establishing which feature point to use in the state estimator, is solved by an assignment algorithm. A track management method is also developed. In particular a track continuation method and a track quality indicator are presented. The evaluation of the tracking system on real sequences shows that the IMM filter combined with the assignment algorithm outperforms the Kalman filter, used with the Nearest Neighbour (NN) filter, in terms of data association performance and robustness to sudden feature point manoeuvre.
机译:提出了一种特征点跟踪算法。 交互多模型(IMM)滤波器用于估计特征点的状态。 数据关联问题,即建立在状态估计器中使用的特征点,通过分配算法解决。 还开发了轨道管理方法。 特别地,介绍了轨道连续方法和轨道质量指示符。 实际序列上的跟踪系统的评估表明,IMM滤波器与分配算法相结合,与最近邻居(NN)过滤器一起使用的卡尔曼滤波器,以数据关联性能和突然特征点机动的鲁棒性而言。

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