利用自动命名实体识别提高机器翻译质量

Q4 Medicine Medecine Therapeutique Pub Date : 2003-04-13 DOI:10.3115/1609822.1609823
Bogdan Babych, Anthony F. Hartley
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引用次数: 233

摘要

命名实体给最先进的商业机器翻译(MT)系统带来了严重的问题,并且经常导致超出本地上下文的翻译失败,影响句子的整体形态句法良好性和源文本中的词义消歧。我们报告了一个实验的结果,在这个实验中,机器翻译输入使用谢菲尔德的GATE信息提取(IE)系统的命名实体识别模块的输出进行处理。机器翻译质量的提高表明IE技术的特定组件可以提高当前机器翻译系统的性能。
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Improving Machine Translation Quality with Automatic Named Entity Recognition
Named entities create serious problems for state-of-the-art commercial machine translation (MT) systems and often cause translation failures beyond the local context, affecting both the overall morphosyntactic well-formedness of sentences and word sense disambiguation in the source text. We report on the results of an experiment in which MT input was processed using output from the named entity recognition module of Sheffield's GATE information extraction (IE) system. The gain in MT quality indicates that specific components of IE technology could boost the performance of current MT systems.
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Medecine Therapeutique
Medecine Therapeutique Medicine-Medicine (all)
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期刊介绍: Une revue de médecine interne en langue française qui crée le lien entre les progrès de la recherche et la pratique médicale. Médecine thérapeutique aborde toutes les disciplines médicales à travers de nombreuses rubriques : dossier thématique (une revue de six articles environ), cas cliniques, démarche diagnostique, mécanismes des maladies, biologie... et fournit une remarquable synthèse de l’ensemble des informations médicales disponibles à ce jour. Médecine thérapeutique est la revue de haut niveau que tous les médecins hospitaliers attendaient. Elle s’adresse à tous ceux que la médecine passionne.
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Improving Machine Translation Quality with Automatic Named Entity Recognition
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