Abstract
As urban airspaces become increasingly congested, managing autonomous UAV operations presents significant challenges, particularly in ensuring safety and efficiency through effective flight plan approval and conflict resolution mechanisms. This paper addresses these challenges by investigating the role of artificial intelligence (AI) in optimizing UAV operations within U-Space, focusing on strategic deconfliction and autonomous flight plan approvals. The primary aim of this study is to explore how AI techniques - specifically machine learning, optimization algorithms, and explainable AI (XAI) - can be integrated into UAV traffic management systems to support safe, scalable, and fair urban airspace use. The AI4HyDrop project is used to illustrate an AI-based approach in supporting fair and environmentally sustainable airspace use, addressing challenges in strategic deconfliction and airspace allocation. Ultimately, this work seeks to answer the question: "How can AI techniques be integrated to optimize autonomous drone flight plan approvals with mechanisms for strategic deconfliction in high-density airspaces?"By emphasizing the potential of AI to transform urban UAV operations, this study outlines key directions for research and collaboration in developing safer and more efficient drone logistic operations.
| Original language | English |
|---|---|
| Pages (from-to) | 1191-1196 |
| Number of pages | 6 |
| Journal | IFAC-PapersOnLine |
| Volume | 59 |
| Issue number | 10 |
| DOIs | |
| Publication status | Published - 1 Jul 2025 |
| Event | 11th IFAC Conference on Manufacturing Modelling, Management and Control, MIM 2025 - Trondheim, Norway Duration: 30 Jun 2025 → 3 Jul 2025 |
Bibliographical note
Publisher Copyright:Copyright © 2025 The Authors.
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 11 Sustainable Cities and Communities
Keywords
- Artificial Intelligence
- UAV Traffic Management
- drone flight plan
- drone logistic
- strategic deconfliction
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