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EXAONE Tabular 1.0 : Technical Report

arXiv · AI, language, vision and robotics · article · Aug 26, 2026 · UTC

EXAONE Tabular is a compact tabular foundation model family for classification and regression via in-context learning, producing predictions without dataset-specific gradient updates. Pretrained exclusively on a synthetic structural-causal-model (SCM) prior, its central contribution is an architecture-centered redesign of tabular in-context learning. Rather than compressing features into a fixed row embedding before a separate row-level learner, EXAONE Tabular interleaves feature-axis attention within each item with support-conditioned item-axis attention within each feature at every Transform

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Evidence & attribution

First collected: 2026-09-21T09:22:01.459Z. This is not the publication date.