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This is a research prototype. The data and analyses are preliminary and not yet validated — we'd welcome your .

AI Systems interacting with brittle environments

Risk Sources and Risk Management Measures in Support of Standards for General-Purpose AI Systems

Gipiškis et al. (2024)

Sub-category
Risk Domain

AI systems that fail to perform reliably or effectively under varying conditions, exposing them to errors and failures that can have significant consequences, especially in critical applications or areas that require moral reasoning.

"Deployed AI systems can rely on physical sensors and data sources that may exhibit hardware drift and thus data distribution drift over time. This distribu- tion drift may affect system robustness and performance. This usually involves AI systems working in undigitized and physical environments."(p. 46)

Supporting Evidence (1)

1.
"For example, for a traffic violation detection system, a slight camera movement due to environmental conditions can cause failures in detection [173]."(p. 46)

Other risks from Gipiškis et al. (2024) (144)