Papers by Douglas Teodoro

2 papers
Classification of hierarchical text using geometric deep learning: the case of clinical trials corpus (2021.emnlp-main)

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Challenge: Fig. 1 shows a simplified CT protocol.
Approach: They propose to use geometric deep learning to classify hierarchical documents into different categories by using a selective graph pooling operation that arises from the fact that some parts of the hierarchy are invariable across different documents.
Outcome: The proposed model achieves f1-scores around 0.85 on a publicly available large scale CT registry of around 360K protocols.
MMLU-ProX: A Multilingual Benchmark for Advanced Large Language Model Evaluation (2025.emnlp-main)

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Challenge: Existing large language model evaluation benchmarks focus on English, while current multilingual tasks lack parallel questions that specifically assess cross-lingual reasoning abilities.
Approach: They propose a comprehensive benchmark covering 29 languages, built on an English benchmark.
Outcome: The MMLU-ProX is a comprehensive benchmark covering 29 languages, built on an English benchmark.

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