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Scaling HuBERT for African Languages: From Base to Large and XL

Domain:

natural language processing

Record type:

papermodelsoftware
Creator:
CauGauthier, Elodie
Host:avatar
Despite recent progress in multilingual speech processing, African languages remain under-represented in both research and deployed systems, particularly when it comes to strong, open-weight encoders that transfer well under low-resource supervision. Self-supervised learning has proven especially promising in such settings, yet most publicly released models targeting African speech remain at BASE scale, leaving unanswered whether larger encoders, trained exclusively on Africa-centric audio, offer tangible benefits and how model capacity interacts with data composition. This work addresses that gap by introducing SSA-HuBERT-Large (317M parameters) and SSA-HuBERT-XL (964M parameters), the first large models trained solely on African speech, alongside a BASE size counterpart. We release these models as open weights: see huggingface.co. By conducting a carefully controlled experimental study focused exclusively on Sub-Saharan languages, covering automatic speech recognition (ASR) and language identification (LID) tasks, we demonstrate that larger architectures significantly improve performance by effectively leveraging large audio datasets. Journée d'études AFIA-ATALA 2025 : Technologies linguistiques pour les langues peu dotées

Visit

arxiv.org

Tasks

automatic speech recognitionlanguage identificationspeech processing

Languages

Degema

Tags

Computation and Language

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XL-Sum: Large-Scale Multilingual Abstractive Summarization for 44 Languages XL - Sum: تلخيص تجريبي متعدد اللغات واسع النطاق لـ 44 لغة Somme XL : Résumé abstrait multilingue à grande échelle pour 44 langues XL-Sum: Resumen abstracto multilingüe a gran escala para 44 idiomas

Contemporary works on abstractive text summarization have focused primarily on highresource language