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This paper describes in detail a novel approach to the reordering challenge in statistical machine translation (SMT).
This Ngram-based reordering (NbR) approach uses the powerful techniques of SMT systems to generate a weighted reordering graph. Thus, statistical criteria reordering constraints are supplied to an SMT system, and this allows an extension to the SMT decoding search.
The NbR approach is capable of generalizing reorderings that have been learned during training, through the use of word classes instead of words themselves.
Improvement in translation performance is demonstrated with the EPPS task (Spanish and German to English) and the BTEC task (Arabic to English).
Mejor artículo 2009 publicado en una revista internacional firmado en primer lugar por un joven investigador de una universidad española; otorgado por la Red Temática de Temática de Tecnologías del Habla
CitationCosta-Jussà, M. R.; Fonollosa, José A. R. An Ngram-based reordering model. "Computer speech and language", Juliol 2009, vol. 23, núm. 3, p. 362-375.
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