TabXEval: Why this is a Bad Table? An eXhaustive Rubric for Table Evaluation

Vihang Pancholi, Jainit Sushil Bafna, Tejas Anvekar, Manish Shrivastava, Vivek Gupta · 2025

Evaluating tables qualitatively and quantitatively poses a significant challenge, as standard metrics often overlook subtle structural and content-level discrepancies.To address this, we propose a rubric-based evaluation framework that integrates multi-level structural descriptors with fine-grained contextual signals, enabling more precise and consistent table comparison.Building on this, we introduce TabXEval, an eXhaustive and eXplainable two-phase evaluation framework.TabXEval first aligns reference and predicted tables structurally via TabAlign, then performs semantic and syntactic comparison using TabCompare, offering interpretable and granular feedback.We evaluate TabXEval on TabXBench, a diverse, multi-domain benchmark featuring realistic table perturbations and human annotations.A sensitivity-specificity analysis further demonstrates the robustness and explainability of TabXEval across varied table tasks.

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