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Exploiting Similarities among Languages for Machine Translation

About

Dictionaries and phrase tables are the basis of modern statistical machine translation systems. This paper develops a method that can automate the process of generating and extending dictionaries and phrase tables. Our method can translate missing word and phrase entries by learning language structures based on large monolingual data and mapping between languages from small bilingual data. It uses distributed representation of words and learns a linear mapping between vector spaces of languages. Despite its simplicity, our method is surprisingly effective: we can achieve almost 90% precision@5 for translation of words between English and Spanish. This method makes little assumption about the languages, so it can be used to extend and refine dictionaries and translation tables for any language pairs.

Tomas Mikolov, Quoc V. Le, Ilya Sutskever• 2013

Related benchmarks

TaskDatasetResultRank
RetrievalFEVER
Precision4.13
10
Vector LinkingSCIDOCS
Precision2.2
8
Vector LinkingFiQA
Precision0.7
8
Vector LinkingNFCorpus
Precision2.8
8
Vector LinkingSciFact
Precision2.2
8
Vector LinkingArguAna
Precision0.4
8
Word TranslationWaCky Italian-to-English 1,500 query source words (test)
P@124.9
7
Sentence translation retrievalEuroparl English to Italian (test)
P@110.5
7
Sentence translation retrievalEnglish-Italian Europarl Italian to English (test)
P@112
7
Word TranslationWaCky English-to-Italian 1,500 query source words (test)
P@133.8
7
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