Papers › Using Context-to-Vector with Graph Retrofitting to Improve Word Embeddings

Using Context-to-Vector with Graph Retrofitting to Improve Word Embeddings

30 Oct 2022ACL 2022 5arXiv:2210.16848archive 2025-07-28

Jiangbin Zheng, Yile Wang, Ge Wang, Jun Xia, Yufei Huang, Guojiang Zhao, Yue Zhang, Stan Z. Li

Although contextualized embeddings generated from large-scale pre-trained models perform well in many tasks, traditional static embeddings (e.g., Skip-gram, Word2Vec) still play an important role in low-resource and lightweight settings due to their low computational cost, ease of deployment, and stability. In this paper, we aim to improve word embeddings by 1) incorporating more contextual information from existing pre-trained models into the Skip-gram framework, which we call Context-to-Vec; 2) proposing a post-processing retrofitting method for static embeddings independent of training by employing priori synonym knowledge and weighted vector distribution. Through extrinsic and intrinsic tasks, our methods are well proven to outperform the baselines by a large margin.

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Tasks

Word EmbeddingsWord Similarity

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Word Similarity WS353 Context-to-Vector Spearman's Rho 78.9 #1 of 3 Archive leaderboard report

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