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Performance comparison of the two-stage Kalman filtering techniques for target tracking

机译:目标跟踪的两阶段卡尔曼滤波技术的性能比较

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The two-stage filtering methods, such as the wellknown augmented state Kalman estimator (AUSKE) and the optimal two-stage Kalman estimator (OTSKE), suffer from some major drawbacks. These drawbacks stem from assuming constant acceleration and assuming the input term is observable from the measurement equation. In addition, these methodologies are usually computationally expensive. The innovative optimal partitioned state Kalman estimator (OPSKE) developed to overcome these drawbacks of traditional methodologies. In this paper, we compare performance of the OPSKE with the OTSKE and the AUSKE in the maneuvering target tracking (MTT) problem. We provide some analytic results to demonstrate the computational advantages of the OPSKE.
机译:两级滤波方法,例如众所周知的增强态卡尔曼估计器(AUSKE)和最佳两级卡尔曼估计器(OTSKE),存在一些主要缺点。这些缺点源于假设恒定加速度和假设输入项可从测量方程式观察到的情况。另外,这些方法通常在计算上是昂贵的。创新的最佳分区状态卡尔曼估计器(OPSKE)旨在克服传统方法的这些缺点。在本文中,我们比较了OPSKE与OTSKE和AUSKE在机动目标跟踪(MTT)问题中的性能。我们提供一些分析结果来证明OPSKE的计算优势。

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