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cs.LG2024★ 2 cited
Conformalized-DeepONet: A Distribution-Free Framework for Uncertainty Quantification in Deep Operator Networks
Christian Moya, Amirhossein Mollaali, Zecheng Zhang +2
In this paper, we adopt conformal prediction, a distribution-free uncertainty quantification (UQ) framework, to obtain confidence prediction intervals with coverage guarantees for…
cs.LG2023★ 1 cited
ROAM: memory-efficient large DNN training via optimized operator ordering and memory layout
Huiyao Shu, Ang Wang, Ziji Shi +3
As deep learning models continue to increase in size, the memory requirements for training have surged. While high-level techniques like offloading, recomputation, and compression…