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FINTAL
2006

Improving Statistical Word Alignments with Morpho-syntactic Transformations

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Improving Statistical Word Alignments with Morpho-syntactic Transformations
Abstract. This paper presents a wide range of statistical word alignment experiments incorporating morphosyntactic information. By means of parallel corpus transformations according to information of POS-tagging, lemmatization or stemming, we explore which linguistic information helps improve alignment error rates. For this, evaluation against a human word alignment reference is performed, aiming at an improved machine translation training scheme which eventually leads to improved SMT performance. Experiments are carried out in a Spanish
Adrià de Gispert, Deepa Gupta, Maja Popovic
Added 22 Aug 2010
Updated 22 Aug 2010
Type Conference
Year 2006
Where FINTAL
Authors Adrià de Gispert, Deepa Gupta, Maja Popovic, Patrik Lambert, José B. Mariño, Marcello Federico, Hermann Ney, Rafael E. Banchs
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