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#machine learning Preprint Sep 2026

Making Analog Training Scale: Co-Designing Mapping, Optimizer, and Converters

Analog in-memory computing (AIMC) offers an alternative for model training by executing matrix operations directly where weights are stored. However, scaling AIMC to train modern deep models remains an open challenge due to severe hardware non-idealities, including physical weights with finite dynamic range and write g...

Zhao-Xian Wu, Tayfun Gokmen, Omobayode I. Fagbohungbe et al. · 1 citation

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