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Author

Maximilian Schambach

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#machine learning Preprint Sep 2026

Benchmarking Attention for Tabular Foundation Models

Tabular in-context learners such as TabPFN, Mitra, or ConTextTab rely on alternating row and column attention over 2D sequences of latent embeddings. These attention patterns differ markedly from the one-dimensional case in language models: row attention involves longer sequences while column attention operates on much...

Maximilian Schambach, Clemens Biehl, Sam Thelin · 0 citations
Preprint Aug 2026

Enhancing Tabular Learners with Context-Aware Semantic Embeddings

While modern tabular learners excel at capturing statistical patterns, they frequently operate in a semantic vacuum, treating textual features as discrete symbols, ignoring the rich semantics inherent in feature names or cell entries. We propose CASE (Context-Aware Semantic Embeddings), a novel framework that bridges t...

Günther Schindler, Maximilian Schambach, Johannes Hohne · 0 citations

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