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Flerkrigs-CNN (Convolutional Neural Network)×Fler språk-rekurrent neuralt nätverk×
ÄmnesområdeDjupinlärningDjupinlärning
FamiljMachine learningMachine learning
Ursprungsår2014–20161990–2010s
UpphovspersonKim, Y. (seminal NLP CNN); multilingual extension by communityElman, J. L. (RNN); multilingual extension by NLP community
TypDeep learning classifierSequential model (cross-lingual)
UrsprungskällaKim, Y. (2014). Convolutional Neural Networks for Sentence Classification. Proceedings of EMNLP 2014, pp. 1746–1751. link ↗Elman, J. L. (1990). Finding structure in time. Cognitive Science, 14(2), 179–211. DOI ↗
AliasML-CNN, cross-lingual CNN, multilingual text CNN, multilingual ConvNetMultilingual RNN, Cross-lingual RNN, Multi-language RNN, MRNN
Närliggande45
SammanfattningA Multilingual CNN applies convolutional filters over token embeddings drawn from two or more languages, producing shared feature representations that enable a single model to classify, tag, or extract information across language boundaries without training separate models per language. It extends the standard text-CNN architecture with multilingual or cross-lingual input embeddings.A Multilingual Recurrent Neural Network (Multilingual RNN) applies the standard RNN architecture — which processes sequences step by step while maintaining a hidden state — to data spanning two or more languages. By training on multilingual corpora or sharing parameters across languages, the model learns cross-lingual sequence representations useful for translation, tagging, classification, and language modeling tasks.
ScholarGateDatamängd
  1. v1
  2. 2 Källor
  3. PUBLISHED
  1. v1
  2. 2 Källor
  3. PUBLISHED

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ScholarGateJämför metoder: Multilingual Convolutional Neural Network · Multilingual Recurrent Neural Network. Hämtad 2026-06-18 från https://scholargate.app/sv/compare