Projected Latent Markov Chain Monte Carlo: Conditional Sampling of Normalizing Flows
Chris Cannella, Mohammadreza Soltani, Vahid Tarokh
2021年份
1被引次数
4顶会引用
摘要
We introduce Projected Latent Markov Chain Monte Carlo (PL-MCMC), a technique for sampling from the exact conditional distributions learned by normalizing flows. As a conditional sampling method, PL-MCMC enables Monte Carlo Expectation Maximization (MC-EM) training of normalizing flows from incomplete data. Through experimental tests applying normalizing flows to missing data tasks for a variety of data sets, we demonstrate the efficacy of PL-MCMC for conditional sampling from normalizing flows.
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- Composing Normalizing Flows for Inverse ProblemsJay Whang, Erik M. Lindgren, Alex DimakisICML 2021 · 被引用 56 次
- Posterior Matching for Arbitrary ConditioningRyan R. Strauss, Junier B. OlivaNeurIPS 2022 · 被引用 7 次
- Enhanced Importance Sampling Through Latent Space Exploration in Normalizing FlowsLiam Anthony Kruse, Alexandros E. Tzikas, Harrison Delecki, Mansur M. Arief 等AAAI 2025 · 被引用 1 次
- Outsourced Diffusion Sampling: Efficient Posterior Inference in Latent Spaces of Generative ModelsSiddarth Venkatraman, Mohsin Hasan, Minsu Kim, Luca Scimeca 等ICML 2025
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