Publication | Open Access
A matching technique in Example-Based Machine Translation
45
Citations
14
References
1994
Year
Unknown Venue
EngineeringSemanticsCorpus LinguisticsCelex DatabaseText MiningNatural Language ProcessingInformation RetrievalData ScienceComputational LinguisticsLanguage StudiesMachine TranslationComputer-assisted TranslationMatching TechniqueSimilarity SearchLinguisticsComputer ScienceBest Matching ExampleNeural Machine TranslationText ProcessingExample-based Machine TranslationSpeech TranslationSemantic Similarity
This paper addresses an important problem in Example-Based Machine Translation (EMBT), namely how to measure similarity between a sentence fragment and a set of stored examples. A new method is proposed that measures similarity according to both surface structure and content. A second contribution is the use of clustering to make retrieval of the best matching example from the database more efficient. Results on a large number of test cases from the CELEX database are presented.
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