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Accurate Prediction and Uncertainty Estimation using Decoupled Prediction Interval Networks

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arxiv 2202.09664 v1 pith:PSQ7FJIU submitted 2022-02-19 cs.LG stat.ML

classification cs.LGstat.ML
keywords predictionuncertaintyerrorintervallearningnetworkpredictionsaccuracy
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We propose a network architecture capable of reliably estimating uncertainty of regression based predictions without sacrificing accuracy. The current state-of-the-art uncertainty algorithms either fall short of achieving prediction accuracy comparable to the mean square error optimization or underestimate the variance of network predictions. We propose a decoupled network architecture that is capable of accomplishing both at the same time. We achieve this by breaking down the learning of prediction and prediction interval (PI) estimations into a two-stage training process. We use a custom loss function for learning a PI range around optimized mean estimation with a desired coverage of a proportion of the target labels within the PI range. We compare the proposed method with current state-of-the-art uncertainty quantification algorithms on synthetic datasets and UCI benchmarks, reducing the error in the predictions by 23 to 34% while maintaining 95% Prediction Interval Coverage Probability (PICP) for 7 out of 9 UCI benchmark datasets. We also examine the quality of our predictive uncertainty by evaluating on Active Learning and demonstrating 17 to 36% error reduction on UCI benchmarks.

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  1. Interval and fuzzy physics-augmented neural networks (iPANN and fPANN) for uncertainty quantification and propagation in constitutive modeling

    cs.LG 2026-07 conditional novelty 5.0 of 10

    A neural-network constitutive model whose lower/mean/upper free-energy branches are trained to enclose noisy stress observations, plus a fuzzy alpha-cut interpolation for adjustable conservatism.

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