Search Results for author: James A. Ritchie

Found 2 papers, 2 papers with code

Density Deconvolution with Normalizing Flows

1 code implementation16 Jun 2020 Tim Dockhorn, James A. Ritchie, Yao-Liang Yu, Iain Murray

Density deconvolution is the task of estimating a probability density function given only noise-corrupted samples.

Density Estimation Variational Inference

Scalable Extreme Deconvolution

1 code implementation26 Nov 2019 James A. Ritchie, Iain Murray

The Extreme Deconvolution method fits a probability density to a dataset where each observation has Gaussian noise added with a known sample-specific covariance, originally intended for use with astronomical datasets.

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