Interacting Multiple Model fixed-lag smoothing algorithm for Markovian switching systems

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作者
Chen, Bing [1 ]
Tugnait, Jitendra K. [1 ]
机构
[1] Auburn Univ, Auburn, United States
关键词
Algorithms - Computer simulation - Markov processes - Mathematical models;
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摘要
We investigate a suboptimal approach to the fixed-lag smoothing problem for Markovian switching systems. A fixed-lag smoothing algorithm is developed by applying the basic Interacting Multiple Model (IMM) approach to a state-augmented system. The computational load is roughly d (the fixed lag) times beyond that of filtering for the original system. In addition, an algorithm that approximates the `fixed-lag' mode probabilities given measurements up to current time is proposed. The algorithm is illustrated via a target tracking simulation example where a significant improvement over the filtering algorithm is achieved. The IMM fixed-lag smoothing performance for the given example is comparable to that of an existing IMM fixed-interval smoother. Compared to fixed-interval smoothers, the fixed-lag smoothers can be implemented in real-time with a small delay.
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页码:269 / 274
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