Learning Word Vectors Efficiently Using Shared Representations and Document Representations

Luo, Qun (Beijing University of Posts and Telecommunications) | Xu, Weiran (Beijing University of Posts and Telecommunications)

AAAI Conferences 

We propose some better word embedding models based on vLBL model and ivLBL model by sharing representations between context and target words and using document representations. Our proposed models are much simpler which have almost half less parameters than the state-of-the-art methods. We achieve better results on word analogy task than the best ones reported before using significantly less training data and computing time.

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