What to Automate, When, and Why? A concept design to explore Human–AI Teaming in Crisis Management

Journal Article (2026)
Author(s)

Tamara Dert (TU Delft - Technology, Policy and Management)

Srijith Balakrishnan (TU Delft - Technology, Policy and Management)

Natalie van der Wal (TU Delft - Technology, Policy and Management)

Tina Comes (TU Delft - Technology, Policy and Management)

Research Group
Transport and Logistics
DOI related publication
https://doi.org/10.59297/57cnkh29 Final published version
More Info
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Publication Year
2026
Language
English
Research Group
Transport and Logistics
Journal title
Proceedings of the International ISCRAM Conference
Volume number
23
Event
23rd International ISCRAM Conference: Building Stronger Futures: Ensuring Public Safety in Times of Crisis, 2026 (2026-05-31 - 2026-06-03), The Hague, Netherlands
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28
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Abstract

Artificial intelligence promises rapid information processing, analysis and decisions. Yet, guidance on what to automate, when, and to what degree, remains limited for Human-AI teams. Case-based empirical studies provide rich context, but a framework for systematic exploration of Human–AI team performance is missing. This paper introduces a conceptual model for Human–AI teaming that integrates levels of automation, trust dynamics, and organizational functions within a social networked, agent based perspective. Building on the crisis information management cycle, it models sensing, analysis, sharing, and decision-making as an iterative loop in which automation shapes latency, reliability, and trust. As a proof of concept, we developed a minimal model with results showing how automation regimes, forecast horizons, and trust configurations affect performance through the concept. The model provides a starting point for users to explore cascading effects, authority shifts, and trade-offs between performance and meaningful human control.

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