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Cross-lingual semantic alignment and transfer learning using multilingual language models

G C, NiranjanP, Ramakanth KumarH, PavithraMoharir, Minal
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 April 2026
DOI10.11591/ijece.v16i2.pp973-980

Abstrak

Multilingual language models (MLMs) are widely used for cross-lingual tasks, yet their ability to achieve consistent semantic alignment and transfer to low-resource languages remains limited. This work examines cross-lingual semantic alignment and transfer learning through a comparative evaluation of MLMs at both the word and sentence levels. We analyze general-purpose models such as BLOOM and task-specialized models including LaBSE and XLM-R across English, French, Hindi, and Kannada. Word-level experiments show that LaBSE achieves substantially higher cosine similarity scores of above 0.80 across languages. In sentence-level natural language inference, XLM-R outperforms other models, achieving an F1 score of 68.62% on Kannada and 74.81% on French. These results indicate that model specialization and training objectives play a crucial role in cross-lingual performance, particularly for low-resource languages, and should be carefully considered when deploying multilingual natural language processing (NLP) systems.

Kata Kunci

Artificial IntelligenceNatural Language ProcessingDeep LearningLanguage ModelsCosine similarityMultilingual language modelsNatural language inferenceNatural language processingSemantic alignment

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Cross-lingual semantic alignment and transfer learning using multilingual language models | International Journal of Electrical and Computer Engineering (IJECE) | Publiora