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TWIX: a Two-Stage Approach for End-To-End Named Entity Recognition and Relation Extraction

Marco Martinelli, Laura Menotti

Latestcs.CLcs.LGcs.AIcs.CV
arXiv ID
2609.00832 v1
Category
Submitted
2026-09-01

Abstract

The exponential growth of scientific publications calls for automatic Information Extraction (IE) systems to support knowledge discovery. In this context, the GutBrainIE benchmark evaluates Named Entity Recognition (NER), Named Entity Recognition and Disambiguation (NERD), and Relation Extraction (RE) systems in the gut-brain axis domain. We propose Two-stage Workflow for Information eXtraction (TWIX), an end-to-end IE pipeline featuring three interconnected modules, each leveraging a two-stage framework to solve all four GutBrainIE subtasks. Evaluation on the development and test sets shows that our method substantially outperforms the baseline by a wide margin, while also ranking first among all participant submissions across all subtasks. These results indicate that the proposed two-stage pipeline effectively improves both precision and recall in practical settings.

Comment: Accepted at CLEF 2026: the 17th Conference and Labs of the Evaluation Forum

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