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Wielojęzyczna grafowa sieć neuronowa×Wielojęzyczny transformator×
DziedzinaUczenie głębokieUczenie głębokie
RodzinaMachine learningMachine learning
Rok powstania20192019–2020
TwórcaVarious (Kipf & Welling 2017 for GNN; multilingual extensions from NLP community ~2019)Devlin et al. (mBERT); Conneau et al. (XLM-R)
TypGraph-based deep learning with multilingual node/edge featuresPre-trained cross-lingual language model
Źródło pierwotneKipf, T. N., & Welling, M. (2017). Semi-supervised classification with graph convolutional networks. In Proceedings of ICLR 2017. link ↗Devlin, J., Chang, M.-W., Lee, K., & Toutanova, K. (2019). BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding. Proceedings of NAACL-HLT 2019, pp. 4171–4186. Association for Computational Linguistics. DOI ↗
Inne nazwyMultilingual GNN, cross-lingual GNN, multilingual graph network, multilingual relational GNNmultilingual LM, cross-lingual transformer, mBERT-style model, multilingual pre-trained model
Pokrewne54
PodsumowanieA Multilingual Graph Neural Network (Multilingual GNN) applies graph-based message-passing over nodes and edges that carry features from two or more languages. It is used for tasks such as cross-lingual entity alignment, multilingual knowledge-graph completion, and relation extraction across parallel or comparable corpora, allowing structural and semantic information from multiple languages to be jointly learned.A multilingual transformer is a pre-trained language model built on the transformer architecture and trained jointly on text from dozens to over one hundred languages. Models such as mBERT and XLM-RoBERTa learn shared cross-lingual representations, enabling zero-shot or few-shot transfer: a model fine-tuned on English data can often be applied directly to French, German, Arabic, or Chinese without language-specific labels.
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ScholarGatePorównaj metody: Multilingual graph neural network · Multilingual Transformer. Pobrano 2026-06-18 z https://scholargate.app/pl/compare