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Spawned Target Tracking Algorithm Based on GLMB Model in RFS Theory

Authors :
Liu Deng-kun
Lin Yi-fu
Liu Jiying
Liu Ze-ping
Source :
2020 IEEE 3rd International Conference on Electronics Technology (ICET).
Publication Year :
2020
Publisher :
IEEE, 2020.

Abstract

This paper proposes a spawned targets tracking algorithm—STT-δ-GLMB—by extending the δ-GLMB algorithm. In the course of the research, we found that for the original δ-GLMB algorithm, performance of the spawned target tracking is seriously insufficient in the environment of the low signal-to-noise ratio. For this problem, the biggest difficulty is spawned target birth detection, and we need to model spawned target. Therefore, this paper uses the characteristics, position and velocity of the spawned target, and multiple frames of measurements to detect the spawned target. By referring to parent target state arguments, we model spawned target based on δ-GLMB. Simulation results show that under low detection rate and strong clutters, the proposed algorithm can accurately estimate spawned targets, and the performance is significantly better than the original δ-GLMB algorithm.

Details

Database :
OpenAIRE
Journal :
2020 IEEE 3rd International Conference on Electronics Technology (ICET)
Accession number :
edsair.doi...........1423c80c7f671eb9ea347acf8ff16b02
Full Text :
https://doi.org/10.1109/icet49382.2020.9119618