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References: Pending verification
Proof: Verification pending
Freshness state: computing
Source paper: ReSS: Learning Reasoning Models for Tabular Data Prediction via Symbolic Scaffold
PDF: https://arxiv.org/pdf/2604.13392v1
Source count: 3
Coverage: 50%
Last proof check: 2026-04-16T18:18:38.672Z
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/buildability/ress-learning-reasoning-models-for-tabular-data-prediction-via-symbolic-scaffold
Subject: ReSS: Learning Reasoning Models for Tabular Data Prediction via Symbolic Scaffold
Verdict
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Dimensions overall score 8.0
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Symbolic Scaffold Chenlang Yi * 1 Gang Li * 1 Zizhan Xiong 1 Tue Minh Cao2 Yanmin Gong1 My T. Thai2 Tianbao Yang1 Abstract Tabular data remains prevalent in high-stakes do- mains such as healthcare and finance
Implication not extracted yet.
partial
a sequence of tokens. 3.3. Symbolic Scaffold Informed Reasoning Dataset Curation Given a symbolic scaffold that specifies the constraints of the decision process, we leverage the input features, the output label
Implication not extracted yet.
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shrink the size of training data for SFT. Below, we present an effective data augmentation strategy. A data augmentation is usually performed by perturbing the input features. However
Implication not extracted yet.
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Creditg 20 800 641 2564 100 100 Diabetes 8 614 536 2144 77 77 HomeLoan 11 491 406 1624 61 62 reasoning traces by setting their values to unknown in the input, and measure the resulting performance degradation. Similarly
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mann et al., 2023) for the Diabetes and Creditg datasets. For the AD and HomeLoan datasets, we design dataset-specific serialization templates, with details provided in Appendix D. Baselines
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base LLM, corresponding to the approach in (Xu et al., 2025). For all LLM fine-tuning methods, we use Qwen-2.5- 3B-Instruct as the base model. For RL, we use the recently proposed DisCO algorithm (Li et al., 2025)
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not invent non-existent features or incorrect feature values in its reasoning. Comparison Hallucination occurs only rarely, with rates below 2% on all datasets
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generic architectures such as MLPs, which lack induc- tive biases aligned with the structure of tabular decision manifolds and often struggle to match the performance of tree-based methods (Arik & Pfister, 2020)
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partial
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Receipt path
/buildability/ress-learning-reasoning-models-for-tabular-data-prediction-via-symbolic-scaffold
Paper ref
ress-learning-reasoning-models-for-tabular-data-prediction-via-symbolic-scaffold
arXiv id
2604.13392
Generated at
2026-04-16T18:18:38.672Z
Evidence freshness
stale
Last verification
2026-04-16T18:18:38.672Z
Sources
3
References
0
Coverage
50%
Lineage hash
f267a26c9aa27ec1e0b1c2bda9581113f1f2655d44e0f637d4ef6fa9e70a47c5
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Pending verification refs / 3 sources / Verification pending
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