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A Variational Measurement Update for Extended Target Tracking With Random Matrices

机译:带有随机矩阵的扩展目标跟踪的变分度量更新

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摘要

This correspondence proposes a new measurement update for extended target tracking under measurement noise when the target extent is modeled by random matrices. Compared to the previous measurement update developed by Feldmann , this work follows a more rigorous path to derive an approximate measurement update using the analytical techniques of variational Bayesian inference. The resulting measurement update, though computationally more expensive, is shown via simulations to be better than the earlier method in terms of both the state estimates and the predictive likelihood for moderate amounts of prediction errors.
机译:当目标范围由随机矩阵建模时,此对应关系提出了一种新的测量更新,用于在测量噪声下扩展目标跟踪。与费尔德曼(Feldmann)先前开发的测量更新相比,这项工作采用了更严格的路径,使用变分贝叶斯推断分析技术来得出近似的测量更新。尽管在状态估计和适度的预测误差的预测可能性方面,通过仿真显示,所得的测量更新尽管在计算上更加昂贵,但通过仿真显示出比早期方法更好。

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