Deterministic Langevin Monte Carlo with Normalizing Flows for Bayesian Inference
Richard D. P. Grumitt, Biwei Dai, Uros Seljak
2022年份
15被引次数
6顶会引用
摘要
We propose a general purpose Bayesian inference algorithm for expensive likelihoods, replacing the stochastic term in the Langevin equation with a deterministic density gradient term. The particle density is evaluated from the current particle positions using a Normalizing Flow (NF), which is differentiable and has good generalization properties in high dimensions. We take advantage of NF preconditioning and NF based Metropolis-Hastings updates for a faster convergence. We show on various examples that the method is competitive against state of the art sampling methods.
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引用它的顶会 Paper6
- On Sampling with Approximate Transport MapsLouis Grenioux, Alain Oliviero Durmus, Eric Moulines, Marylou GabriéICML 2023 · 被引用 25 次
- Metropolis Adjusted Microcanonical Hamiltonian Monte CarloJakob Robnik, Reuben Cohn-Gordon, Uros SeljakNeurIPS 2025 · 被引用 8 次
- Can Microcanonical Langevin Dynamics Leverage Mini-Batch Gradient Noise?Emanuel Sommer, Kangning Diao, Jakob Robnik, Uros Seljak 等ICML 2026 · 被引用 6 次
- Practical and Scalable Hamiltonian Monte Carlo Without the Metropolis TestJakob Robnik, Reuben Cohn-Gordon, Uros SeljakICML 2026 · 被引用 5 次
- Learning Rate Free Bayesian Inference in Constrained DomainsLouis Sharrock, Lester Mackey, Christopher NemethNeurIPS 2023 · 被引用 3 次
它引用的顶会 Paper3
- Score-Based Generative Modeling through Stochastic Differential EquationsYang Song, Jascha Sohl-Dickstein, Diederik P. Kingma, Abhishek Kumar 等ICLR 2021 · 被引用 1,270 次
- Annealed Flow Transport Monte CarloMichael Arbel, Alexander G. de G. Matthews, Arnaud DoucetICML 2021 · 被引用 99 次
- Sliced Iterative Normalizing FlowsBiwei Dai, Uros SeljakICML 2021 · 被引用 1 次
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