Papers › Learning Meta Word Embeddings by Unsupervised Weighted Concatenation of Source Embeddings

Learning Meta Word Embeddings by Unsupervised Weighted Concatenation of Source Embeddings

26 Apr 2022arXiv:2204.12386archive 2025-07-28

Danushka Bollegala

Given multiple source word embeddings learnt using diverse algorithms and lexical resources, meta word embedding learning methods attempt to learn more accurate and wide-coverage word embeddings. Prior work on meta-embedding has repeatedly discovered that simple vector concatenation of the source embeddings to be a competitive baseline. However, it remains unclear as to why and when simple vector concatenation can produce accurate meta-embeddings. We show that weighted concatenation can be seen as a spectrum matching operation between each source embedding and the meta-embedding, minimising the pairwise inner-product loss. Following this theoretical analysis, we propose two \emph{unsupervised} methods to learn the optimal concatenation weights for creating meta-embeddings from a given set of source embeddings. Experimental results on multiple benchmark datasets show that the proposed weighted concatenated meta-embedding methods outperform previously proposed meta-embedding learning methods.

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compute_A LivNLP/meta-concat/GlobalME.py found in paper text by Syntology ran MIT (permissive) · 83d3f793de595b15 · report
concat LivNLP/meta-concat/concat.py found in paper text by Syntology ran MIT (permissive) · 8db0f90df651de66 · report
get_error LivNLP/meta-concat/GlobalME.py found in paper text by Syntology ran MIT (permissive) · 55b475a76b5ea24d · report
guess_dim LivNLP/meta-concat/tsne.py found in paper text by Syntology ran MIT (permissive) · 99f5db6e11268a58 · report
load_data LivNLP/meta-concat/baselines.py found in paper text by Syntology ran MIT (permissive) · bba9fd333515bf42 · report
load_source LivNLP/meta-concat/baselines.py found in paper text by Syntology ran MIT (permissive) · fb45a1d15a95269a · report
update LivNLP/meta-concat/GlobalME.py found in paper text by Syntology ran MIT (permissive) · b6fdd29297f200ae · report

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