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Toward a Decision-Assurance Layer for AI-Assisted Flight Planning in Air Traffic Management

arXiv · AI, language, vision and robotics · article · Sep 11, 2026 · UTC

Generative AI is increasingly being used informally in Air Traffic Management (ATM) for tasks such as flight plan generation, trajectory interpretation, and constraint checking. Although these tools can reduce workload and accelerate planning, their non-deterministic outputs create safety and operational risks in human-in-the-loop settings. This paper proposes the AI Trust and Assurance Layer (ATAL), a model-agnostic decision assurance architecture that evaluates whether AI-generated flight-planning outputs are sufficiently reliable for operational use. ATAL combines semantic stability under p

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Evidence & attribution

First collected: 2026-09-20T16:41:15.630Z. This is not the publication date.