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Swarm Drone Urban Pathfinding Algorithm

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placePK home_workRemoto assignmentPor contrato publicEmpleo agregado · PK

eventPublicado el 04 sept 2026 · verifiedLo confirmamos en el momento en que este empleo fue agregado

US$ 30 – US$ 250 por proyecto

Sobre el empleo

I need an implementable approach that lets a swarm of autonomous drones discover the most efficient path through AI technologies in a busy urban landscape while constantly negotiating dynamic obstacles such as cars and pedestrians. The emphasis is on efficiency rather than simple collision-free travel, so your solution should balance travel time, energy usage and real-time rerouting without spreading the drones too far apart. I am open to a bio-inspired technique—ant colony optimisation, particle swarm, artificial bee or a hybrid—so long as it scales cleanly from small (5–10 drones) to medium fleets (50+). Please choose libraries and simulation tools you are confident with; ROS 2, PX4, Gazebo, Webots, Python fine if they help you deliver quickly. Deliverables • Well-documented source code of the swarm path-planning algorithm • A repeatable simulation showing successful urban navigation with moving vehicles and pedestrians randomly injected into the map • Short report (2-3 pages) explaining design decisions, parameter tuning and quantitative results (average flight time, energy consumed, success rate) Acceptance criteria • 95 % or better mission completion rate over 100 simulation runs • Average flight time no more than 10 % longer than the single-drone theoretical optimum on the same map • No mid-air collisions or deadlocks under maximum load conditions If you have previous work on multi-agent path finding or reinforcement learning for robotics, please mention it; otherwise, a concise proposal outlining your chosen technique and timeline is enough to get us started.

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