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Information Weighted Consensus With Interacting Multiple Model Over Distributed Networks

delete2021-04-01
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PRE
AI
呼
呼德 (De Hu)
陈
陈喆 (Zhe Chen)
F
Fuliang Yin *
DOI:10.1109/TCSII.2020.3032963delete
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摘要

摘要

En 中文
Distributed estimation approach is becoming increasingly popular in the sensor networks community. In this brief, an information weighted consensus with interacting multiple models is proposed for distributed networks. Firstly, the multiple models predict the state estimate individually at each node. Then, the measured data across nodes are fused effectively through the local communication among neighboring nodes. Afterward, the fused data are employed to update the state estimates predicted by multiple models at each node. Finally, a novel model probability calculation criterion is presented to obtain the global state estimate at each node. The effectiveness of the proposed method is demonstrated on a target tracking task.
Keyword:
Predictive models
Computational modeling
Estimation
Kalman filters
Gaussian distribution
Distributed networks
information weighted consensus
interacting multiple model
consensus filtering
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期刊

I
IEEE Transactions on Circuits and Systems and Express Briefs
IF:
4.9
论文数:
8.8K
被引数:
2.5W

机构

D
Dalian University of Technology
学者数:
6.0W
论文数: 4.4W
被引数: 5.5W
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