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The Belebele Benchmark: a Parallel Reading Comprehension Dataset in 122 Language Variants

The Belebele Benchmark: a Parallel Reading Comprehension Dataset in 122 Language Variants

FromPapers Read on AI


The Belebele Benchmark: a Parallel Reading Comprehension Dataset in 122 Language Variants

FromPapers Read on AI

ratings:
Length:
41 minutes
Released:
Sep 26, 2023
Format:
Podcast episode

Description

We present Belebele, a multiple-choice machine reading comprehension (MRC) dataset spanning 122 language variants. Significantly expanding the language coverage of natural language understanding (NLU) benchmarks, this dataset enables the evaluation of text models in high-, medium-, and low-resource languages. Each question is based on a short passage from the Flores-200 dataset and has four multiple-choice answers. The questions were carefully curated to discriminate between models with different levels of general language comprehension. The English dataset on its own proves difficult enough to challenge state-of-the-art language models. Being fully parallel, this dataset enables direct comparison of model performance across all languages. We use this dataset to evaluate the capabilities of multilingual masked language models (MLMs) and large language models (LLMs). We present extensive results and find that despite significant cross-lingual transfer in English-centric LLMs, much smaller MLMs pretrained on balanced multilingual data still understand far more languages. We also observe that larger vocabulary size and conscious vocabulary construction correlate with better performance on low-resource languages. Overall, Belebele opens up new avenues for evaluating and analyzing the multilingual capabilities of NLP systems.

2023: Lucas Bandarkar, Davis Liang, Benjamin Muller, Mikel Artetxe, Satya Narayan Shukla, Don Husa, Naman Goyal, Abhinandan Krishnan, Luke Zettlemoyer, Madian Khabsa



https://arxiv.org/pdf/2308.16884v1.pdf
Released:
Sep 26, 2023
Format:
Podcast episode

Titles in the series (100)

Keeping you up to date with the latest trends and best performing architectures in this fast evolving field in computer science. Selecting papers by comparative results, citations and influence we educate you on the latest research. Consider supporting us on Patreon.com/PapersRead for feedback and ideas.