Efficient Bayesian Learning Curve Extrapolation using Prior-Data Fitted Networks
Steven Adriaensen, Herilalaina Rakotoarison, Samuel Müller, Frank Hutter
Abstract
Learning curve extrapolation aims to predict model performance in later epochs of training, based on the performance in earlier epochs. In this work, we argue that, while the inherent uncertainty in the extrapolation of learning curves warrants a Bayesian approach, existing methods are (i) overly restrictive, and/or (ii) computationally expensive. We describe the first application of prior-data fitted neural networks (PFNs) in this context. A PFN is a transformer, pre-trained on data generated from a prior, to perform approximate Bayesian inference in a single forward pass. We propose LC-PFN, a PFN trained to extrapolate artificial right-censored learning curves generated from a parametric prior proposed in prior art using MCMC. We demonstrate that LC-PFN can approximate the posterior predictive distribution over learning curves more accurately than MCMC, while being over 10 000 times faster. We also show that the same LC-PFN achieves competitive performance extrapolating a total of 20 000 real learning curves from four learning curve benchmarks (LCBench, NAS-Bench-201, Taskset, and PD1) that stem from training a wide range of model architectures (MLPs, CNNs, RNNs, and Transformers) on 53 different datasets with varying input modalities (tabular, image, text, and protein data). Finally, we investigate its potential in the context of model selection and find that a simple LC-PFN based predictive early stopping criterion obtains 2 -6× speed-ups on 45 of these datasets, at virtually no overhead.
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Install the CLIlune papers fulltext 8fc3a374-6ee2-4290-9efc-129595be3d8bCited by top-tier papers17
- ForecastPFN: Synthetically-Trained Zero-Shot ForecastingSamuel Dooley, Gurnoor Singh Khurana, Chirag Mohapatra, Siddartha V. Naidu et al.NeurIPS 2023 · 142 citations
- TuneTables: Context Optimization for Scalable Prior-Data Fitted NetworksBenjamin Feuer, Robin Schirrmeister, Valeriia Cherepanova, Chinmay Hegde et al.NeurIPS 2024 · 57 citations
- In-Context Freeze-Thaw Bayesian Optimization for Hyperparameter OptimizationHerilalaina Rakotoarison, Steven Adriaensen, Neeratyoy Mallik, Samir Garibov et al.ICML 2024 · 28 citations
- Architecture-Aware Learning Curve Extrapolation via Graph Ordinary Differential EquationYanna Ding, Zijie Huang, Xiao Shou, Yihang Guo et al.AAAI 2025 · 4 citations
- Cost-Sensitive Freeze-thaw Bayesian Optimization for Efficient Hyperparameter TuningDong Bok Lee, Aoxuan Silvia Zhang, Byungjoo Kim, Junhyeon Park et al.NeurIPS 2025 · 2 citations
Builds on6
- NAS-Bench-201: Extending the Scope of Reproducible Neural Architecture SearchXuanyi Dong, Yi YangICLR 2020 · 825 citations
- Transformers Can Do Bayesian InferenceSamuel Müller, Noah Hollmann, Sebastian Pineda-Arango, Josif Grabocka et al.ICLR 2022 · 287 citations
- ForecastPFN: Synthetically-Trained Zero-Shot ForecastingSamuel Dooley, Gurnoor Singh Khurana, Chirag Mohapatra, Siddartha V. Naidu et al.NeurIPS 2023 · 142 citations
- TabPFN: A Transformer That Solves Small Tabular Classification Problems in a SecondNoah Hollmann, Samuel Müller, Katharina Eggensperger, Frank HutterICLR 2023 · 96 citations
- PFNs4BO: In-Context Learning for Bayesian OptimizationSamuel Müller, Matthias Feurer, Noah Hollmann, Frank HutterICML 2023 · 71 citations
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