Papers › Provably Reliable Large-Scale Sampling from Gaussian Processes

Provably Reliable Large-Scale Sampling from Gaussian Processes

15 Nov 2022arXiv:2211.08036archive 2025-07-28

Anthony Stephenson, Robert Allison, Edward Pyzer-Knapp

When comparing approximate Gaussian process (GP) models, it can be helpful to be able to generate data from any GP. If we are interested in how approximate methods perform at scale, we may wish to generate very large synthetic datasets to evaluate them. Na\"{i}vely doing so would cost 𝒪(n³) flops and 𝒪(n²) memory to generate a size n sample. We demonstrate how to scale such data generation to large n whilst still providing guarantees that, with high probability, the sample is indistinguishable from a sample from the desired GP.

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Ds ant-stephenson/gpsampler/sweep.py official repository unverified MIT (permissive) · 2f3d1147fe0bdfd8 · report
Js ant-stephenson/gpsampler/sweep.py official repository unverified MIT (permissive) · e7be2ae9a3edb225 · report
am ant-stephenson/gpsampler/utils.py official repository unverified MIT (permissive) · 09f82b21442b0ebe · report
check_exists ant-stephenson/gpsampler/utils.py official repository unverified MIT (permissive) · 596c7719cc8db7e4 · report
check_exists_str ant-stephenson/gpsampler/utils.py official repository unverified MIT (permissive) · 47838d6216b11379 · report
import_data ant-stephenson/gpsampler/analyse_sweep_output.py official repository unverified MIT (permissive) · b3919379c2d17789 · report
k_true ant-stephenson/gpsampler/samplers.py official repository unverified MIT (permissive) · d39f4f558d928acb · report

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Gaussian Processes

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Gaussian Process

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