Analyzing Operator States and the Impact of AI-Enhanced Decision Support in Control Rooms: A Human-in-the-Loop Specialized Reinforcement Learning Framework for Intervention Strategies
Ammar N. Abbas, Chidera W. Amazu, Joseph Mietkiewicz, Houda Briwa,, Andres Alonzo Perez, Gabriele Baldissone, Micaela Demichela, Georgios G., Chasparis, John D. Kelleher, and Maria Chiara Leva

TL;DR
This paper evaluates an AI-based decision support system in control rooms, demonstrating its effectiveness in reducing workload, enhancing situational awareness, and aiding intervention strategies through a human-in-the-loop reinforcement learning framework.
Contribution
It introduces a novel human-in-the-loop reinforcement learning framework integrating AI decision support with real-time data analysis for control room interventions.
Findings
Reduced operator workload and improved situational awareness.
Effective prediction of individual performance in handling plant upsets.
Insights into information gathering styles and decision-making processes.
Abstract
In complex industrial and chemical process control rooms, effective decision-making is crucial for safety and efficiency. The experiments in this paper evaluate the impact and applications of an AI-based decision support system integrated into an improved human-machine interface, using dynamic influence diagrams, a hidden Markov model, and deep reinforcement learning. The enhanced support system aims to reduce operator workload, improve situational awareness, and provide different intervention strategies to the operator adapted to the current state of both the system and human performance. Such a system can be particularly useful in cases of information overload when many alarms and inputs are presented all within the same time window, or for junior operators during training. A comprehensive cross-data analysis was conducted, involving 47 participants and a diverse range of data sources…
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Taxonomy
TopicsHuman-Automation Interaction and Safety
