Multi-Agent Reinforcement Learning for Autonomous UAV Exploration in Wildfire Response
This study develops a deep reinforcement learning framework for training Unmanned Aerial Vehicle (UAV) agents to navigate and monitor simulated wildfire environments. Results show that agents learn increasingly stable and effective behaviors over time, as demonstrated by converging loss trends, improved reward signals, and more consistent navigation patterns such as fire-boundary tracking. Overall, these findings highlight the potential of deep reinforcement learning (DRL) based UAV systems for autonomous wildfire monitoring and suggest that environmental structure and reward design influence
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- PossiblePossibly related (embedding) · 54%Firefighting drones in the works as wildfires plague US nearly year-round →
- PossiblePossibly related (embedding) · 53%Deep Reinforcement Learning Optimizes Drone-Mounted Smart Surfaces for Edge Computing - Bioengineer.org →
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- FuzzySimilar title/name (fuzzy) · 59%AgentCore-8B →
“Fuzzy title match (0.73): “Multi-Agent Reinforcement Learning for Autonomous UAV Explor” ≈ “AgentCore-8B””
- FuzzySimilar title/name (fuzzy) · 87%SWE-agent/SWE-agent →
“Fuzzy title match (0.94): “Multi-Agent Reinforcement Learning for Autonomous UAV Explor” ≈ “SWE-agent/SWE-agent””
- FuzzySimilar title/name (fuzzy) · 87%zhayujie/CowAgent →
“Fuzzy title match (0.94): “Multi-Agent Reinforcement Learning for Autonomous UAV Explor” ≈ “zhayujie/CowAgent””
- FuzzySimilar title/name (fuzzy) · 84%amitness/learning →
“Fuzzy title match (0.92): “Multi-Agent Reinforcement Learning for Autonomous UAV Explor” ≈ “amitness/learning””
- FuzzySimilar title/name (fuzzy) · 66%open-multi-agent/open-multi-agent →
“Fuzzy title match (0.78): “Multi-Agent Reinforcement Learning for Autonomous UAV Explor” ≈ “open-multi-agent/open-multi-agent””
