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Vícejazyková GRU×Gated Recurrent Unit (GRU)×
OborHluboké učeníHluboké učení
RodinaMachine learningMachine learning
Rok vzniku2014 (GRU); multilingual applications from ~20162014
TvůrceCho, K. et al. (GRU); multilingual extension by NLP communityCho, K., van Merrienboer, B., Gulcehre, C., Bahdanau, D., Bougares, F., Schwenk, H., & Bengio, Y.
TypRecurrent sequence model (multilingual)Recurrent neural network with gating
Původní zdrojCho, K., van Merrienboer, B., Gulcehre, C., Bahdanau, D., Bougares, F., Schwenk, H., & Bengio, Y. (2014). Learning Phrase Representations using RNN Encoder-Decoder for Statistical Machine Translation. Proceedings of EMNLP 2014, 1724–1734. DOI ↗Cho, K., van Merrienboer, B., Gulcehre, C., Bahdanau, D., Bougares, F., Schwenk, H., & Bengio, Y. (2014). Learning Phrase Representations using RNN Encoder-Decoder for Statistical Machine Translation. In Proceedings of EMNLP 2014, pp. 1724–1734. link ↗
Další názvyMultilingual GRU, cross-lingual GRU, multilingual gated recurrent unit, multi-language GRUGRU, GRU network, gated RNN, GRU cell
Příbuzné43
ShrnutíA Multilingual GRU is a Gated Recurrent Unit network trained on text data spanning multiple languages, enabling sequential modeling of language-sensitive tasks such as sentiment analysis, named entity recognition, and machine translation across language boundaries without requiring separate models per language.The Gated Recurrent Unit (GRU), introduced by Cho et al. in 2014, is a streamlined recurrent neural network that uses two learned gates — an update gate and a reset gate — to selectively retain or discard information across time steps, enabling effective sequence modelling with fewer parameters than LSTM.
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ScholarGatePorovnat metody: Multilingual GRU · Gated Recurrent Unit. Získáno 2026-06-18 z https://scholargate.app/cs/compare