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Scheduling Jamming Resources in Complex Terrain: A Multi-Objective Air—Ground Collaborative Optimization Approach

Author

Listed:
  • Haiyang You

    (Rocket Force University of Engineering, Xi’an 710025, China)

  • Zhenhua Wei

    (Rocket Force University of Engineering, Xi’an 710025, China)

  • Wenpeng Wu

    (Rocket Force University of Engineering, Xi’an 710025, China
    PLA 967XX Unit, Sanmenxia, China)

  • Chenxi Li

    (Rocket Force University of Engineering, Xi’an 710025, China)

  • Jianwei Zhan

    (Rocket Force University of Engineering, Xi’an 710025, China)

  • Zhaoguang Zhang

    (Rocket Force University of Engineering, Xi’an 710025, China)

Abstract

Addressing the high-dimensional, strongly constrained multi-objective optimization problem of air–ground collaborative jamming scheduling in complex terrain, existing methods are often limited by incomplete modeling and low optimization efficiency in discrete feasible regions. This paper proposes a Terrain-Aware Multi-Scale Discrete Operator (TA-MSDO). A joint optimization model integrating discrete terrain characteristics and practical combat constraints is first constructed. Then, by leveraging the topological adjacency of terrain units, TA-MSDO employs a block-level crossover and a multi-scale mutation mechanism, replacing traditional continuous genetic operations to enable efficient and directional exploration of the discrete feasible region. Integrating TA-MSDO into the NSGA-III framework yields the enhanced ENSGA3 algorithm. Experimental results in a typical hilly terrain scenario demonstrate that ENSGA3 achieves a statistically significant performance improvement over the decomposition-based MOEA/D algorithm in terms of maximum achievable suppression effectiveness and hypervolume. As a comprehensive metric integrating convergence and Pareto frontier coverage, hypervolume further verifies the superior comprehensive optimization capability of the proposed algorithm. Meanwhile, compared with other classic mainstream multi-objective optimization algorithms including NSGA-II, standard NSGA-III and SPEA2, the proposed algorithm exhibits clear positive advantages in the upper bound of suppression effectiveness for elite solutions and operational stability across random initializations, with a favorable trend in Pareto frontier coverage for multi-objective collaborative optimization. This work provides an effective solution for jamming resource scheduling in complex battlefield environments.

Suggested Citation

  • Haiyang You & Zhenhua Wei & Wenpeng Wu & Chenxi Li & Jianwei Zhan & Zhaoguang Zhang, 2026. "Scheduling Jamming Resources in Complex Terrain: A Multi-Objective Air—Ground Collaborative Optimization Approach," Future Internet, MDPI, vol. 18(5), pages 1-44, April.
  • Handle: RePEc:gam:jftint:v:18:y:2026:i:5:p:225-:d:1925692
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