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Multilinguïstische Variationele Auto-encoder×Meertalige Zins-Embeddings×
VakgebiedDeep learningDeep learning
FamilieMachine learningMachine learning
Jaar van ontstaan2017-20182019–2022
GrondleggerMultiple research groups (Lample, Conneau et al.; Zhao et al.)Reimers, N. & Gurevych, I.; Feng, F. et al. (Google)
TypeGenerative latent-variable modelCross-lingual representation learning
Oorspronkelijke bronZhao, T., Zhang, Y., & Eskenazi, M. (2018). Zero-shot dialog generation with cross-domain latent actions. In Proceedings of the 19th Annual SIGdial Meeting on Discourse and Dialogue (pp. 1-10). ACL. link ↗Reimers, N. & Gurevych, I. (2020). Making Monolingual Sentence Embeddings Multilingual using Knowledge Distillation. Proceedings of EMNLP 2020, 4512–4525. link ↗
AliassenML-VAE, cross-lingual VAE, multilingual latent variable model, multilingual generative autoencodermultilingual sentence representations, cross-lingual sentence embeddings, mSE, multilingual semantic embeddings
Verwant55
SamenvattingA Multilingual Variational Autoencoder (ML-VAE) extends the standard VAE framework to handle multiple languages within a shared probabilistic latent space. Language-specific encoders map text from each language into a common continuous representation, while language-specific decoders reconstruct or translate that text. This enables cross-lingual generation, style transfer, and representation learning with or without parallel corpora.Multilingual sentence embeddings map sentences from many languages into a single shared vector space so that semantically equivalent sentences — regardless of language — land close together. Models such as LaBSE, multilingual Sentence-BERT, and mUSE have made it practical to compare, retrieve, and classify text across 50 to 100+ languages without translating anything first.
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  1. v1
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  3. PUBLISHED

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ScholarGateMethoden vergelijken: Multilingual variational autoencoder · Multilingual Sentence Embeddings. Geraadpleegd op 2026-06-18 via https://scholargate.app/nl/compare