Journal of Systems Engineering and Electronics ›› 2026, Vol. 37 ›› Issue (3): 1002-1018.doi: 10.23919/JSEE.2026.000089

• CONTROL THEORY AND APPLICATION •    

Online reentry guidance algorithm based on trajectory analytical solutions

Weibo SUN1,2(), Ping MA1,2(), Xiaonan LI1,2(), Songyan WANG1,2(), Tao CHAO1,2,*()   

  1. 1Control and Simulation Center, Harbin Institute of Technology, Harbin 150001, China
    2National Key Laboratory of Modeling and Simulation for Complex Systems, Harbin 150001, China
  • Received:2024-08-26 Online:2026-06-18 Published:2026-06-29
  • Contact: Tao CHAO E-mail:hitswb2020@126.com;pingma@hit.edu.cn;hfutlxn@163.com;sywang@hit.edu.cn;chaotao2000@163.com
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (62273119).

Abstract:

To enhance the real-time performance and accuracy of guidance command generation, we propose an online reentry guidance algorithm based on analytical solutions of the hypersonic glide trajectory (HGT). Initially, an altitude-velocity profile is designed in the longitudinal plane to satisfy both path and terminal constraints. Based on this profile, we derive analytical solutions for the flight path angle (FPA) and bank angle. Subsequently, by employing the Newton-Raphson method to linearize the reentry motion equations, analytical solutions for the latitude and heading angle are obtained. Furthermore, we introduce an improved particle swarm optimization (IPSO) algorithm to optimize the profile parameters. This approach significantly enhances the algorithm’s global convergence by narrowing the parameter optimization range and adaptively adjusting the inertia weight and cognitive factors. Finally, we present an online guidance algorithm that combines the HGT analytical solutions with the IPSO algorithm. This algorithm effectively achieves longitudinal and lateral guidance by continuously updating the altitude-velocity profile and bank angle symbol in real time. Simulation results demonstrate that the proposed algorithm is fast, efficient, accurate, and holds significant potential for broader application.

Key words: altitude-velocity profile, analytical solution, improved particle swarm optimization (IPSO), online reentry guidance