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Noise Contrastive Priors for Functional Uncertainty

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arxiv 1807.09289 v3 pith:YECAZZWB submitted 2018-07-24 stat.ML cs.LG

classification stat.MLcs.LG
keywords uncertaintyestimatesdistributionncpspriortraininginputsnoise
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Obtaining reliable uncertainty estimates of neural network predictions is a long standing challenge. Bayesian neural networks have been proposed as a solution, but it remains open how to specify their prior. In particular, the common practice of an independent normal prior in weight space imposes relatively weak constraints on the function posterior, allowing it to generalize in unforeseen ways on inputs outside of the training distribution. We propose noise contrastive priors (NCPs) to obtain reliable uncertainty estimates. The key idea is to train the model to output high uncertainty for data points outside of the training distribution. NCPs do so using an input prior, which adds noise to the inputs of the current mini batch, and an output prior, which is a wide distribution given these inputs. NCPs are compatible with any model that can output uncertainty estimates, are easy to scale, and yield reliable uncertainty estimates throughout training. Empirically, we show that NCPs prevent overfitting outside of the training distribution and result in uncertainty estimates that are useful for active learning. We demonstrate the scalability of our method on the flight delays data set, where we significantly improve upon previously published results.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Density estimation in representation space to predict model uncertainty

    cs.LG 2019-08 conditional novelty 4.0 of 10

    A learned classifier over k-nearest-neighbor statistics in a pretrained network's representation space predicts misclassifications and detects out-of-distribution images without training on out-of-distribution examples.

  2. Bayesian Neural Networks: An Introduction and Survey

    stat.ML 2020-06 unverdicted novelty 1.0 of 10

    A survey introducing Bayesian Neural Networks and comparing approximate inference methods to enable uncertainty quantification in neural network predictions.

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