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Compressed Active Subspaces for Scalable Bayesian Inference

Researchers proposed Compressed Active Subspaces (CAS), a method that maps model parameters into a compressed space via a structured isometric embedding before constructing the active subspace, cutting the memory needed for active subspace construction and enabling Bayesian inference on large models. The authors report that CAS scales to neural networks of increasing size while maintaining predictive performance and robust uncertainty estimates, addressing the storage of many full-dimensional model gradients that makes standard active subspace methods impractical. The work is published as arXiv:2609.19539v1.

by read1 min views1 publishedSep 18, 2026

arXiv:2609.19539v1 Announce Type: new Abstract: Active subspace methods provide a framework for quantifying predictive uncertainty in high-dimensional models by identifying and performing inference along parameter directions that have the greatest influence on the model output. However, the construction of active subspaces requires storing many full-dimensional model gradients, which becomes prohibitive as model size increases. We address this limitation by proposing Compressed Active Subspaces (CAS), a scalable approach that first maps the model parameters to a compressed space using a structured isometric embedding and then constructs the active subspace within this reduced parameterization. Our approach substantially reduces the memory required for active subspace construction and enables Bayesian inference for large models where standard active subspace methods become impractical. We demonstrate the scalability of CAS on neural networks of increasing size while maintaining predictive performance and robust uncertainty estimates.

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