Why Pretraining Fails to Share Cross-Lingual Knowledge
Published 18 Sept 2026arXiv:2609.19291
Updated 4 h ago · first seen 18 Sept 2026
paper_01M2SEG2YVJ7RFTDDQ3GJTEPJS
Abstract
Large Language Models (LLMs) have made remarkable progress in the processing and modeling of many languages. Yet, unlike human multilinguals, they exhibit surprisingly limited cross-lingual knowledge transfer. While this limitation is well documented, its origins during multilingual training remain unclear. We pretrain 360M- and 7B-parameter LLMs and show that poor cross-lingual knowledge generalization emerges during pretraining and persists under standard interventions. To isolate its cause, we employ a controlled bilingual pretraining setting using two copies of the same language, sharing identical text and token segmentation, but mapped to disjoint token spaces. We find that disjoint tokens alone are enough to induce knowledge compartmentalization, even between identical copies of the same language, establishing disjoint token spaces as a fundamental barrier to cross-lingual knowledge generalization. Guided by this understanding, we suggest mapping languages into a shared token space by simple word-wise translation and find it substantially improves cross-lingual knowledge generalization, recovering up to 12.6\% of native-language learning efficiency --- 14$\times$ the baseline.
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Why Pretraining Fails to Share Cross-Lingual Knowledge: arxiv announce type changed from new to cross
Arxiv announce typenew→crossarxivWhy Pretraining Fails to Share Cross-Lingual Knowledge: arxiv announce type changed from cross to new
Arxiv announce typecross→newarxivNew paper: Why Pretraining Fails to Share Cross-Lingual Knowledge
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