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- W2853138162 abstract "Distributed word embeddings have shown superior performances in numerous Natural Language Processing (NLP) tasks. However, their performances vary significantly across different tasks, implying that the word embeddings learnt by those methods capture complementary aspects of lexical semantics. Therefore, we believe that it is important to combine the existing word embeddings to produce more accurate and complete meta-embeddings of words. We model the meta-embedding learning problem as an autoencoding problem, where we would like to learn a meta-embedding space that can accurately reconstruct all source embeddings simultaneously. Thereby, the meta-embedding space is enforced to capture complementary information in different source embeddings via a coherent common embedding space. We propose three flavours of autoencoded meta-embeddings motivated by different requirements that must be satisfied by a meta-embedding. Our experimental results on a series of benchmark evaluations show that the proposed autoencoded meta-embeddings outperform the existing state-of-the-art meta-embeddings in multiple tasks." @default.
- W2853138162 created "2018-07-19" @default.
- W2853138162 creator A5073503574 @default.
- W2853138162 creator A5076649449 @default.
- W2853138162 date "2018-08-01" @default.
- W2853138162 modified "2023-09-23" @default.
- W2853138162 title "Learning Word Meta-Embeddings by Autoencoding" @default.
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