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Time-Optimal Planning for Long-Range Quadrotor Flights: An Automatic Optimal Synthesis Approach

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arxiv 2407.17944 v1 pith:X2LMRHJO submitted 2024-07-25 cs.RO cs.SYeess.SY

classification cs.ROcs.SYeess.SY
keywords time-optimalapproachquadrotortrajectoriesautomaticlargelongmaneuvers
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Time-critical tasks such as drone racing typically cover large operation areas. However, it is difficult and computationally intensive for current time-optimal motion planners to accommodate long flight distances since a large yet unknown number of knot points is required to represent the trajectory. We present a polynomial-based automatic optimal synthesis (AOS) approach that can address this challenge. Our method not only achieves superior time optimality but also maintains a consistently low computational cost across different ranges while considering the full quadrotor dynamics. First, we analyze the properties of time-optimal quadrotor maneuvers to determine the minimal number of polynomial pieces required to capture the dominant structure of time-optimal trajectories. This enables us to represent substantially long minimum-time trajectories with a minimal set of variables. Then, a robust optimization scheme is developed to handle arbitrary start and end conditions as well as intermediate waypoints. Extensive comparisons show that our approach is faster than the state-of-the-art approach by orders of magnitude with comparable time optimality. Real-world experiments further validate the quality of the resulting trajectories, demonstrating aggressive time-optimal maneuvers with a peak velocity of 8.86 m/s.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Dynamical Vehicle Orienteering Problem for Multi-Rotor Unmanned Aerial Vehicles

    cs.RO 2026-07 conditional novelty 6.0 of 10

    DVOP, a second-order dynamics extension of the orienteering problem for multi-rotor UAVs, is solved by an LTD-based LNS heuristic and a MILP-primitive BnB that improves KOP rewards by up to 37%.

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