Hybrid feature-level and model-level fusion of physics residuals with ML ensembles improves CSTR diagnostic accuracy by 2.9% and yields smaller, well-calibrated conformal prediction sets.
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A Hybrid Intelligent Framework for Uncertainty-Aware Condition Monitoring of Industrial Systems
Hybrid feature-level and model-level fusion of physics residuals with ML ensembles improves CSTR diagnostic accuracy by 2.9% and yields smaller, well-calibrated conformal prediction sets.