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08:41, 11 September 2026
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Gubkin University Develops AI System to Respond to Fires at Energy Facilities

It can respond within seconds.

Photo: unsplash.com

Researchers at Gubkin University have developed an AI system designed to improve safety at fuel and energy facilities. The system can cut response times to fires by a factor of 10.

According to the developers, deploying the technology could reduce fire-related damage by at least 58%. Previously, neural networks used in industrial safety could only determine whether a fire was present. The new system takes a fundamentally different approach: instead of simply detecting a fire, it performs an analysis of what is happening.

The system processes images from surveillance cameras and assigns each incident a hazard level. The team tested it on images of real fires recorded at an operating fuel and energy facility. As a result, the operator’s response time fell from one to two minutes to 10 seconds.

Importantly, the algorithm filters out false fire-alarm triggers. This significantly reduces the workload for operators. They no longer need to review huge amounts of information because the system generates a detailed, structured report on the incident.

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