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Do-pfn: In-context learning for causal effect estimation

Canonical reference. 83% of citing Pith papers cite this work as background.

8 Pith papers citing it
Background 83% of classified citations

citation-role summary

background 5 method 1

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years

2026 7 2025 1

verdicts

UNVERDICTED 8

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representative citing papers

TabPFN-3: Technical Report

cs.LG · 2026-05-13 · unverdicted · novelty 6.0 · 2 refs

TabPFN-3 scales tabular foundation models to 1M rows with synthetic pretraining, test-time compute, and benchmark-leading performance on tabular, relational, and tabular-text tasks while being up to 20x faster than TabPFN-2.5.

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  • TabPFN-2.5: Advancing the State of the Art in Tabular Foundation Models cs.LG · 2025-11-11 · unverdicted · none · ref 15

    TabPFN-2.5 scales tabular foundation models to 20x larger datasets, outperforms tuned tree models on TabArena, achieves near-perfect win rates against default XGBoost, and adds a distillation engine for fast production deployment.