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Towards Burmese (Myanmar) Morphological Analysis: Syllable-based Tokenization and Part-of-speech Tagging

机译:走向缅甸语(缅甸语)形态分析:基于音节的标记化和词性标记

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摘要

This article presents a comprehensive study on two primary tasks in Burmese (Myanmar) morphological analysis: tokenization and part-of-speech (POS) tagging. Twenty thousand Burmese sentences of newswire are annotated with two-layer tokenization and POS-tagging information, as one component of the Asian Language Treebank Project. The annotated corpus has been released under a CC BY-NC-SA license, and it is the largest open-access database of annotated Burmese when this manuscript was prepared in 2017. Detailed descriptions of the preparation, refinement, and features of the annotated corpus are provided in the first half of the article. Facilitated by the annotated corpus, experiment-based investigations are presented in the second half of the article, wherein the standard sequence-labeling approach of conditional random fields and a long short-term memory (LSTM)-based recurrent neural network (RNN) are applied and discussed. We obtained several general conclusions, covering the effect of joint tokenization and POS-tagging and importance of ensemble from the viewpoint of stabilizing the performance of LSTM-based RNN. This study provides a solid basis for further studies on Burmese processing.
机译:本文对缅甸语(缅甸语)形态分析中的两个主要任务进行了全面研究:标记化和词性(POS)标记。作为亚洲语言树库项目的一个组成部分,新闻专线的2万缅甸句带有两层标记和POS标签信息。带注释的语料库已根据CC BY-NC-SA许可证发布,并且是2017年编写此手稿时最大的带注释缅甸语的开放访问数据库。带注释的语料库的详细说明,改进和特点在文章的前半部分中提供。在带注释的语料库的帮助下,本文的后半部分介绍了基于实验的研究,其中条件随机字段和基于长短期记忆(LSTM)的递归神经网络(RNN)的标准序列标记方法是应用和讨论。从稳定基于LSTM的RNN的性能的角度来看,我们获得了一些笼统的结论,涵盖了联合标记化和POS标记的效果以及集成的重要性。该研究为进一步研究缅甸加工提供了坚实的基础。

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