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Maneuvering target tracking algorithm based on adaptive markov transition probabilitiy matrix and IMM-MGEKF

机译:基于自适应马尔可夫转移概率矩阵和IMM-MGEKF的机动目标跟踪算法

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This paper proposes a tracking algorithm for maneuvering targets based on the Interacting Multiple Model (IMM) and Modified Gain EKF (MGEKF) algorithm that can modify the Markov transition probability matrix in real time. The algorithm improves the error caused by the transition probability matrix determined by the prior information in the classical IMM algorithm that does not match the current model well. The simulation results show that the maneuvering target tracking performance of this algorithm is better than the conventional IMM-EKF algorithm.
机译:提出了一种基于交互式多模型(IMM)和改进增益EKF(MGEKF)算法的机动目标跟踪算法,该算法可以实时修改马尔可夫转移概率矩阵。该算法改善了由经典IMM算法中先验信息确定的,与当前模型不完全匹配的过渡概率矩阵引起的误差。仿真结果表明,该算法的机动目标跟踪性能优于传统的IMM-EKF算法。

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