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Paolo Forte

4 accepted papers

2026

Eventually Optimal and Scalable Multi-Agent Planning for Block Cave Mining

ICRA 2026poster

Automation in underground mining has the potential to significantly enhance safety, operational efficiency, and sustainability. However, effectively coordinating fleets of autonomous vehicles in dynamic mine environments introduces substantial challenges in both optimization and motion planning. To …

Cited by 0Scholar
2025

Here's your PDDL Problem File! On Using VLMs for Generating Symbolic PDDL Problem Files

ICRA 2025

Large Language Models (LLMs) excel at generating contextually relevant text but lack logical reasoning abilities. They rely on statistical patterns rather than logical inference, making them unreliable for structured decision-making. Integrating LLMs with task planning can address this limitation by

Cited by 1SourceScholar
2025

On Robust Context-Aware Navigation for Autonomous Ground Vehicles

RA-L 2025

We propose a context-aware navigation framework designed to support the navigation of autonomous ground vehicles, including articulated ones. The proposed framework employs a behavior tree with novel nodes to manage the navigation tasks: planner and controller selections, path planning, path followi

Cited by 3SourceScholar