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ICML2023顶会

Gibbsian Polar Slice Sampling

Philip Schär, Michael Habeck, Daniel Rudolf

2023年份
10被引次数
1顶会引用

摘要

Polar slice sampling (Roberts & Rosenthal, 2002) is a Markov chain approach for approximate sampling of distributions that is difficult, if not impossible, to implement efficiently, but behaves provably well with respect to the dimension. By updating the directional and radial components of chain iterates separately, we obtain a family of samplers that mimic polar slice sampling, and yet can be implemented efficiently. Numerical experiments in a variety of settings indicate that our proposed algorithm outperforms the two most closely related approaches, elliptical slice sampling (Murray et al., 2010) and hit-and-run uniform slice sampling (MacKay, 2003) . We prove the well-definedness and convergence of our methods under suitable assumptions on the target distribution.

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