n方案模型:一种减少阿拉伯语稀疏性的方法

M. B. Mohamed, Sarra Zrigui, A. Zouaghi, M. Zrigui
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引用次数: 4

摘要

除了含蓄、歧义、不精确等自然语言的传统特征外,阿拉伯语以其稀疏性而闻名,这也解释了其自动处理的困难。但另一方面,阿拉伯语有一个有趣的特点;引理是基于根和格式的推导生成的。方案是一种模子,允许通过伸长、重复甚至添加字符的动作来改变根的形式。方案还可以赋予生成的单词意义。在这项工作中,我们研究了阿拉伯语在方案层面的统计特征;我们已经强调了在这个级别上稀疏性的衰减。然后,我们探索了通过依赖方案为阿拉伯语构建自然语言处理工具的可能性。我们发现,这些方案在为阿拉伯语构建精确的自然语言处理工具方面具有巨大的潜力。基于全部或部分方案,我们建立了n方案统计模型和文本分类系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
N-scheme model: An approach towards reducing Arabic language sparseness
In addition to traditional characteristics of natural languages like implicitly or ambiguity or imprecision, Arabic is known by its sparseness which explains the difficulty of its automatic processing. But on the other hand, Arabic language is characterized by an interesting property; lemmas are generated by derivation based on roots and schemes. Schemes are kinds of molds allowing changing the form of root by actions involving elongation, or repetition, or even adding characters. Schemes can also give meaning to generated word. In this work we have studied the statistical characteristics of the Arabic language at the level of schemes; we have emphasized the attenuation of the sparseness at this level. Then we explored the possibility of building natural language processing tools for Arabic by relying on schemes. We discovered that schemes have great potential in building accurate natural language processing tools for Arabic. Based entirely or partially on schemes we built an n-scheme statistical model and a text classification system.
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