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20242026
most citednanoTabPFN: A Lightweight and Educational Reimplementation of TabPFN

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cs.LG2026

Causal Data Augmentation for Robust Fine-Tuning of Tabular Foundation Models

Magnus Bühler, Lennart Purucker, Frank Hutter

Fine-tuning tabular foundation models (TFMs) under data scarcity is challenging, as early stopping on even scarcer validation data often fails to capture true generalization perfor…

cs.LG20251 cited

nanoTabPFN: A Lightweight and Educational Reimplementation of TabPFN

Alexander Pfefferle, Johannes Hog, Lennart Purucker +1

Tabular foundation models such as TabPFN have revolutionized predictive machine learning for tabular data. At the same time, the driving factors of this revolution are hard to unde…

cs.LG2025

Does TabPFN Understand Causal Structures?

Omar Swelam, Lennart Purucker, Jake Robertson +3

Causal discovery is fundamental for multiple scientific domains, yet extracting causal information from real world data remains a significant challenge. Given the recent success on…

cs.LG2025

TabPFN-2.5: Advancing the State of the Art in Tabular Foundation Models

Léo Grinsztajn, Klemens Flöge, Oscar Key +23

The first tabular foundation model, TabPFN, and its successor TabPFNv2 have impacted tabular AI substantially, with dozens of methods building on it and hundreds of applications ac…

cs.LG2025

TempoPFN: Synthetic Pre-training of Linear RNNs for Zero-shot Time Series Forecasting

Vladyslav Moroshan, Julien Siems, Arber Zela +2

Foundation models for zero-shot time series forecasting face challenges in efficient long-horizon prediction and reproducibility, with existing synthetic-only approaches underperfo…

cs.LG2025

How Usable is Automated Feature Engineering for Tabular Data?

Bastian Schäfer, Lennart Purucker, Maciej Janowski +1

Tabular data, consisting of rows and columns, is omnipresent across various machine learning applications. Each column represents a feature, and features can be combined or transfo…