<div class="csl-bib-body">
<div class="csl-entry">Schneider, F., Duong, D. L., Lassas, M., de Hoop, M. V., & Helin, T. (2025). An Unconditional Representation of the Conditional Score in Infinite Dimensional Linear Inverse Problems. <i>Transactions on Machine Learning Research</i>.</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/221893
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dc.description.abstract
Score-based diffusion models (SDMs) have emerged as a powerful tool for sampling from the posterior distribution in Bayesian inverse problems. However, existing methods often require multiple evaluations of the forward mapping to generate a single sample, resulting in significant computational costs for large-scale inverse problems. To address this, we propose an unconditional representation of the conditional score function (UCoS) tailored to linear inverse problems, which avoids forward model evaluations during sampling by shifting com putational effort to an offline training phase. In this phase, a task-dependent score function is learned based on the linear forward operator. Crucially, we show that the conditional score can be derived exactly from a trained (unconditional) score using affine transformations, eliminating the need for conditional score approximations. Our approach is formulated in infinite-dimensional function spaces, making it inherently discretization-invariant. We support this formulation with a rigorous convergence analysis that justifies UCoS beyond any specific discretization. Finally we validate UCoS through high-dimensional computed tomography (CT) and image deblurring experiments, demonstrating both scalability and accuracy.
en
dc.language.iso
en
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dc.publisher
Transactions on Machine Learning Research
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dc.relation.ispartof
Transactions on Machine Learning Research
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dc.subject
Bayesian Inverse Problems
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dc.subject
Score based diffusion
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dc.subject
Infinite dimensional Bayesian inference
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dc.title
An Unconditional Representation of the Conditional Score in Infinite Dimensional Linear Inverse Problems
en
dc.type
Article
en
dc.type
Artikel
de
dc.contributor.affiliation
Lappeenranta-Lahti University of Technology, Finland
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dc.contributor.affiliation
University of Helsinki, Finland
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dc.contributor.affiliation
Rice University, United States of America (the)
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dc.contributor.affiliation
Lappeenranta-Lahti University of Technology, Finland