Bias-Free Scalable Gaussian Processes via Randomized Truncations
Abstract
Scalable Gaussian Process methods are computationally attractive, yet introduce modeling biases that require rigorous study. This paper analyzes two common techniques: early truncated conjugate gradients (CG) and random Fourier features (RFF). We find that both methods introduce a systematic bias on the learned hyperparameters: CG tends to underfit while RFF tends to overfit. We address these issues using randomized truncation estimators that eliminate bias in exchange for increased variance. In the case of RFF, we show that the bias-to-variance conversion is indeed a trade-off: the additional variance proves detrimental to optimization. However, in the case of CG, our unbiased learning procedure meaningfully outperforms its biased counterpart with minimal additional computation. Our code is available at https://github.com/ cunningham-lab/RTGPS.
Cite
Text
Potapczynski et al. "Bias-Free Scalable Gaussian Processes via Randomized Truncations." International Conference on Machine Learning, 2021.Markdown
[Potapczynski et al. "Bias-Free Scalable Gaussian Processes via Randomized Truncations." International Conference on Machine Learning, 2021.](https://mlanthology.org/icml/2021/potapczynski2021icml-biasfree/)BibTeX
@inproceedings{potapczynski2021icml-biasfree,
title = {{Bias-Free Scalable Gaussian Processes via Randomized Truncations}},
author = {Potapczynski, Andres and Wu, Luhuan and Biderman, Dan and Pleiss, Geoff and Cunningham, John P},
booktitle = {International Conference on Machine Learning},
year = {2021},
pages = {8609-8619},
volume = {139},
url = {https://mlanthology.org/icml/2021/potapczynski2021icml-biasfree/}
}