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      Towards robust word embeddings for noisy texts

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          Abstract

          Research on word embeddings has mainly focused on improving their performance on standard corpora, disregarding the difficulties posed by noisy texts in the form of tweets and other types of non-standard writing from social media. In this work, we propose a simple extension to the skipgram model in which we introduce the concept of bridge-words, which are artificial words added to the model to strengthen the similarity between standard words and their noisy variants. Our new embeddings outperform the state of the art on noisy texts on a wide range of evaluation tasks, both intrinsic and extrinsic, while retaining a good performance on standard texts. To the best of our knowledge, this is the first explicit approach at dealing with this type of noisy texts at the word embedding level that goes beyond the support for out-of-vocabulary words.

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          Author and article information

          Journal
          25 November 2019
          Article
          1911.10876
          920e846a-1406-4e18-9506-525c4a94b11b

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          11 pages, 1 figure, 4 tables
          cs.CL

          Theoretical computer science
          Theoretical computer science

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