CUNI Submission to MRL 2023 Shared Task on Multi-lingual Multi-task Information Retrieval

October 25, 2023 ยท Declared Dead ยท ๐Ÿ› MRL

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Authors Jindล™ich Helcl, Jindล™ich Libovickรฝ arXiv ID 2310.16528 Category cs.CL: Computation & Language Citations 0 Venue MRL Last Checked 6 months ago
Abstract
We present the Charles University system for the MRL~2023 Shared Task on Multi-lingual Multi-task Information Retrieval. The goal of the shared task was to develop systems for named entity recognition and question answering in several under-represented languages. Our solutions to both subtasks rely on the translate-test approach. We first translate the unlabeled examples into English using a multilingual machine translation model. Then, we run inference on the translated data using a strong task-specific model. Finally, we project the labeled data back into the original language. To keep the inferred tags on the correct positions in the original language, we propose a method based on scoring the candidate positions using a label-sensitive translation model. In both settings, we experiment with finetuning the classification models on the translated data. However, due to a domain mismatch between the development data and the shared task validation and test sets, the finetuned models could not outperform our baselines.
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