Abstract
This paper develops a position-domain guidance optimization framework that adopts alongtrack position as the independent variable, enabling spatially indexed enforcement of geometric constraints and decoupling trajectory shaping from time parameterization. Building on this framework, a position-domain generalized spectral model predictive convex programming (PGS-MPCP) method is proposed to remove reliance on a prespecified terminal time or fixed time window, thereby mitigating time-windowinduced infeasibility in multi-constraint missions involving detours, altitude corridors, and no-fly-zone avoidance. The method is validated on a representative sea-skimming precision-strike planning problem with waypoint and terminal impact-angle constraints. Numerical results demonstrate that PGS-MPCP provides substantial improvements over representative MPSP variants in terms of terminal/waypoint accuracy and feasibility preservation. Relative to convex-optimization and pseudospectral methods, it achieves a favorable balance among computational efficiency, constraint satisfaction, and terminal performance, which makes it promising for online planning and real-time guidance. Additional Monte Carlo studies under both initial-condition perturbations and waypoint-geometry uncertainty further verify stable convergence and robust feasibility preservation.
| Original language | English |
|---|---|
| Journal | Guidance, Navigation and Control |
| DOIs | |
| State | Accepted/In press - 2026 |
Keywords
- Trajectory planning
- convex optimization
- model predictive static programming (MPSP)
- multiple constraints
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