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Named Entity Recognition for Mongolian Language

机译:蒙古语言命名实体识别

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This paper presents a pioneering work on building a Named Entity Recognition system for the Mongolian language, with an agglutinative morphology and a subject-object-verb word order. Our work explores the fittest feature set from a wide range of features and a method that refines machine learning approach using gazetteers with approximate string matching, in an effort for robust handling of out-of-vocabulary words. As well as we tried to apply various existing machine learning methods and find optimal ensemble of classifiers based on genetic algorithm. The classifiers uses different feature representations. The resulting system constitutes the first-ever usable software package for Mongolian NER, while our experimental evaluation will also serve as a much-needed basis of comparison for further research.
机译:本文提出了关于建立蒙古语命名实体识别系统的先驱性工作,该系统具有凝集的形态和主语-宾语-动词词序。我们的工作从广泛的功能中探索最适合的功能集,并探索一种方法,该方法使用带有近似字符串匹配的地名词典来完善机器学习方法,以期有效地处理词汇量不足的单词。以及我们尝试应用各种现有的机器学习方法并基于遗传算法找到分类器的最佳集合。分类器使用不同的特征表示。最终的系统构成了蒙古NER有史以来第一个可用的软件包,而我们的实验评估也将成为进行进一步研究所需的比较基础。

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