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Everlyn Asiko Chimoto

4 accepted papers

2025

GrammaMT: Improving Machine Translation with Grammar-Informed In-Context Learning

ACL 2025long

We introduce GrammaMT, a grammatically-aware prompting approach for machine translation that uses Interlinear Glossed Text (IGT), a common form of linguistic description providing morphological and lexical annotations for source sentences. GrammaMT proposes three prompting strategies: gloss-shot, ch…

2025

The Esethu Framework: Reimagining Sustainable Dataset Governance and Curation for Low-Resource Languages

ACL 2025long

This paper presents the Esethu Framework, a sustainable data curation framework specifically designed to empower local communities and ensure equitable benefit-sharing from their linguistic resource. This framework is supported by the Esethu license, a novel community-centric data license. As a proo…

Cited by 0SourcePDFScholar
2024

Critical Learning Periods: Leveraging Early Training Dynamics for Efficient Data Pruning

ACL 2024findings

Neural Machine Translation models are extremely data and compute-hungry. However, not all datapoints contribute equally to model training and generalization. Data pruning to remove the low-value data points has the benefit of drastically reducing the compute budget without significantdrop in model p…