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Asia Panizza

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Book Open access Jul 2026

Learning Terrain-Aware Edge Costs for Ant-Colony Route Planning via Genetic Programming

Designing transportation routes over complex terrain requires balancing distance with constructability constraints such as slope, elevation, and obstacle avoidance. We propose a hybrid framework that combines Ant Colony Optimization (ACO) with Genetic Programming (GP) on a high-resolution geospatial mesh represented as an 8-neighbor graph enriched with terrain features. GP is used to evolve an edge-cost function via a penalty-driven fitness over multiple start-goal pairs, capturing trade-offs between competing objectives. The learned cost is then exploited by a parallel Min-Max Ant System to efficiently generate feasible routes between user-defined locations. Results show that the proposed method produces computationally efficient routes that reduce steep segments and avoid undesirable areas while maintaining limited detours.

Asia Panizza, Davide Colosimo, Filippo Marcon et al. · 0 citations