I TabPFN through the ICLR 2023 paper — TabPFN: A Transformer That Solves Small Tabular Classification Problems in a Second. The paper introduced TabPFN, an open-source transformer model built specifically for tabular datasets, a space that has not really benefited from deep learning and where gradient boosted decision tree models still dominate.

At that time, TabPFN supported only up to 1,000 training samples and 100 purely numerical features, so its use in real-world settings was fairly limited. Over time, however, there have been several incremental improvements including TabPFN-2, which was introduced in 2025 through the paper — [Accurate Predictions on Small Data with a Tabular Foundation Model (TabPFN-2)]…

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