Joint Collaborative Radar Selection and Transmit Resource Allocation in Multiple Distributed Radar Networks with Imperfect Detection Performance

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Název: Joint Collaborative Radar Selection and Transmit Resource Allocation in Multiple Distributed Radar Networks with Imperfect Detection Performance
Autoři: Chenguang SHI, Zhicheng TANG, Jianjiang ZHOU, Junkun YAN, Ziwei WANG
Zdroj: Leida xuebao, Vol 13, Iss 3, Pp 565-583 (2024)
Informace o vydavateli: China Science Publishing & Media Ltd. (CSPM)
Rok vydání: 2024
Sbírka: Directory of Open Access Journals: DOAJ Articles
Témata: radar resource allocation, multiple distributed radar networks, multitarget tracking, imperfect detection, bayesian cramér-rao lower bound (bcrlb), Electricity and magnetism, QC501-766
Popis: In this study, a collaborative radar selection and transmit resource allocation strategy is proposed for multitarget tracking applications in multiple distributed phased array radar networks with imperfect detection performance. The closed-form expression for the Bayesian Cramér-Rao Lower Bound (BCRLB) with imperfect detection performance is obtained and adopted as the criterion function to characterize the precision of target state estimates. The key concept of the developed strategy is to collaboratively adjust the radar node selection, transmitted power, and effective bandwidth allocation of multiple distributed phased array radar networks to minimize the total transmit power consumption in an imperfect detection environment. This will be achieved under the constraints of the predetermined tracking accuracy requirements of multiple targets and several illumination resource budgets to improve its radio frequency stealth performance. The results revealed that the formulated problem is a mixed-integer programming, nonlinear, and nonconvex optimization model. By incorporating the barrier function approach and cyclic minimization technique, an efficient four-step-based solution methodology is proposed to solve the resulting optimization problem. The numerical simulation examples demonstrate that the proposed strategy can effectively reduce the total power consumption of multiple distributed phased array radar networks by at least 32.3% and improve its radio frequency stealth performance while meeting the given multitarget tracking accuracy requirements compared with other existing algorithms.
Druh dokumentu: article in journal/newspaper
Jazyk: English
Chinese
Relation: https://doaj.org/toc/2095-283X; https://doaj.org/article/55ff1c4038f0443a8c298b0d46d2304d
DOI: 10.12000/JR23081
Dostupnost: https://doi.org/10.12000/JR23081
https://doaj.org/article/55ff1c4038f0443a8c298b0d46d2304d
Přístupové číslo: edsbas.2DA79666
Databáze: BASE
Popis
Abstrakt:In this study, a collaborative radar selection and transmit resource allocation strategy is proposed for multitarget tracking applications in multiple distributed phased array radar networks with imperfect detection performance. The closed-form expression for the Bayesian Cramér-Rao Lower Bound (BCRLB) with imperfect detection performance is obtained and adopted as the criterion function to characterize the precision of target state estimates. The key concept of the developed strategy is to collaboratively adjust the radar node selection, transmitted power, and effective bandwidth allocation of multiple distributed phased array radar networks to minimize the total transmit power consumption in an imperfect detection environment. This will be achieved under the constraints of the predetermined tracking accuracy requirements of multiple targets and several illumination resource budgets to improve its radio frequency stealth performance. The results revealed that the formulated problem is a mixed-integer programming, nonlinear, and nonconvex optimization model. By incorporating the barrier function approach and cyclic minimization technique, an efficient four-step-based solution methodology is proposed to solve the resulting optimization problem. The numerical simulation examples demonstrate that the proposed strategy can effectively reduce the total power consumption of multiple distributed phased array radar networks by at least 32.3% and improve its radio frequency stealth performance while meeting the given multitarget tracking accuracy requirements compared with other existing algorithms.
DOI:10.12000/JR23081