A Hybrid Algorithm for Recognizing the Position of Ezafe Constructions in Persian Texts

S. Noferesti, M. Shamsfard
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引用次数: 7

Abstract

Abtract — In the Persian language, an Ezafe construction is a linking element which joins the head of a phrase to its modifiers. The Ezafe in its simplest form is pronounced as –e, but generally not indicated in writing. Determining the position of an Ezafe is advantageous for disambiguating the boundary of the syntactic phrases which is a fundamental task in most natural language processing applications. This paper introduces a framework for combining genetic algorithms with rule-based models that brings the advantages of both approaches and overcomes their problems. This framework was used for recognizing the position of Ezafe constructions in Persian written texts. At the first stage, the rulebased model was applied to tag some tokens of an input sentence. Then, in the second stage, the search capabilities of the genetic algorithm were used to assign the Ezafe tag to untagged tokens using the previously captured training information. The proposed framework was evaluated on Peykareh corpus and it achieved 95.26 percent accuracy. Test results show that this proposed approach outperformed other approaches for recognizing the position of Ezafe constructions.
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一种识别波斯文本中Ezafe结构位置的混合算法
摘要-在波斯语中,Ezafe结构是连接短语头部和修饰语的连接元素。Ezafe最简单的读音是-e,但通常不写出来。确定Ezafe的位置有利于消除语法短语边界的歧义,这是大多数自然语言处理应用中的基本任务。本文介绍了一种将遗传算法与基于规则的模型相结合的框架,该框架结合了遗传算法和基于规则的模型的优点,克服了两者存在的问题。这个框架被用来识别Ezafe结构在波斯书面文本中的位置。在第一阶段,应用基于规则的模型对输入句子的一些标记进行标记。然后,在第二阶段,利用遗传算法的搜索能力,使用先前捕获的训练信息将Ezafe标签分配给未标记的令牌。在Peykareh语料上对该框架进行了评价,准确率达到95.26%。实验结果表明,该方法在识别Ezafe结构的位置方面优于其他方法。
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