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Gyengén felügyelt Word2Vec×Gyengén felügyelt mondatbeágyazások×
TudományterületMélytanulásMélytanulás
MódszercsaládMachine learningMachine learning
Keletkezés éve2013–20162016–2019
MegalkotóMikolov et al. (Word2Vec); weak supervision framework: Ratner et al.Ratner et al. (weak supervision framework); Reimers & Gurevych (sentence embeddings)
TípusWord embedding with noisy/programmatic labelsRepresentation learning under weak supervision
AlapműMikolov, T., Sutskever, I., Chen, K., Corrado, G., & Dean, J. (2013). Distributed representations of words and phrases and their compositionality. Advances in Neural Information Processing Systems, 26. link ↗Ratner, A., De Sa, C., Wu, S., Selsam, D., & Re, C. (2016). Data Programming: Creating Large Training Sets, Quickly. Advances in Neural Information Processing Systems (NeurIPS), 29. link ↗
Alternatív nevekWS-Word2Vec, weakly-supervised word embeddings, weak-label Word2Vec, semi-noisy Word2VecWS sentence embeddings, noisy-label sentence representation learning, weakly supervised sentence representation, distant-supervision sentence embeddings
Kapcsolódó66
ÖsszefoglalóWeakly Supervised Word2Vec trains Word2Vec-style embeddings using automatically generated, noisy, or heuristic labels rather than costly manual annotation. By leveraging labeling functions, distant supervision, or keyword-based rules to assign soft labels, the approach enables domain-adapted word representations even when large manually annotated corpora are unavailable.Weakly supervised sentence embeddings train dense sentence representations using noisy, heuristic, or programmatically generated labels instead of costly human annotation. Labeling functions — rules, distant supervision signals, or lightweight classifiers — supply approximate supervision that a label model aggregates into probabilistic labels, which then guide the sentence encoder to produce task-useful representations at scale.
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ScholarGateMódszerek összehasonlítása: Weakly supervised Word2Vec · Weakly supervised sentence embeddings. Letöltve 2026-06-17, forrás: https://scholargate.app/hu/compare