Abstract

In this paper, a joint adaptive sampling interval and power allocation (JASIPA) scheme based on chance-constraint programming (CCP) is proposed for maneuvering target tracking (MTT) in a multiple opportunistic array radar (OAR) system. In order to conveniently predict the maneuvering target state of the next sampling instant, the best-fitting Gaussian (BFG) approximation is introduced and used to replace the multimodal prior target probability density function (PDF) at each time step. Since the mean and covariance of the BFG approximation can be computed by a recursive formula, we can utilize an existing Riccati-like recursion to accomplish effective resource allocation. The prior Cramér-Rao lower boundary (prior CRLB-like) is compared with the upper boundary of the desired tracking error range to determine the adaptive sampling interval, and the Bayesian CRLB-like (BCRLB-like) gives a criterion used for measuring power allocation. In addition, considering the randomness of target radar cross section (RCS), we adopt the CCP to package the deterministic resource management model, which minimizes the total transmitted power by effective resource allocation. Lastly, the stochastic simulation is embedded into a genetic algorithm (GA) to produce a hybrid intelligent optimization algorithm (HIOA) to solve the CCP optimization problem. Simulation results show that the global performance of the radar system can be improved effectively by the resource allocation scheme.

Highlights

  • Through the previously mentioned analysis, we propose a joint adaptive sampling interval and power allocation scheme based on chance-constraint programming (CCP) for maneuvering target tracking (MTT) using best-fitting Gaussian (BFG) in multiple opportunistic array radar (OAR) systems

  • To better illustrate the effectiveness of the proposed resource management scheme, the relevant numerical examples are given

  • This paper presents a joint adaptive sampling interval and power allocation scheme based on CCP

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Summary

Introduction

In the OAR system, the stealth of the platform is taken as the core and the digital array is regarded as the base, and the array elements and the transmit/receive (T/R) modules are placed arbitrarily and aperiodically at available open areas over the entire 3-D space of carrier platforms [4,5]. Sensors 2020, 20, 981 of the antenna array, the resource management of OAR is flexible. The maneuvering target tracking (MTT) plays a vital part for various commercial and military applications and receives plenty of attention [6,7,8,9]. The resource management for MTT in the OAR system is a significant and worthwhile research direction

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