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A computational linguistic approach for the identification of translator stylometry using Arabic-English text

机译:一种使用阿拉伯语-英语文本识别翻译机笔法的计算语言方法

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Translator Stylometry is a small but growing area of research in computational linguistics. Despite the research proliferation on the wider research field of authorship attribution using computational linguistics techniques, the translator stylometry problem is more challenging and there is no sufficient literature on the topic. Some authors even claimed that this problem does not have a solution; a claim we will challenge in this paper. We present an innovative set of translator stylometric features that can be used as signatures to detect and identify translators. The features are based on the concept of network motifs: small graph local substructures which have been used successfully in characterizing global network dynamics. The text is transformed into a network, where words become nodes and their adjacencies in a sentence are represented through links. Motifs of size 3 are then extracted from this network and their distribution is used as a signature for the corresponding translator. We then investigate the impact of sample size, method of normalization and imbalance dataset on classification accuracy. We also adopt the Fuzzy Lattice Reasoning Classifier (FLR) among others, where FLR achieved the best performance with a classification accuracy reaching the 70% mark.
机译:笔译笔法是计算语言学领域中一个很小但正在发展的领域。尽管使用计算语言学技术在更广泛的作者归因研究领域进行了广泛的研究,但笔者的笔法问题更具挑战性,并且关于该主题的文献不足。一些作者甚至声称这个问题没有解决方案。我们将在本文中提出质疑的主张。我们提供了一套创新的笔译器笔势功能,可用作签名来检测和识别笔译器。这些功能基于网络主题的概念:已经成功用于表征全球网络动态的小型图形局部子结构。文本被转换成一个网络,其中单词成为节点,它们在句子中的邻接关系通过链接表示。然后从此网络中提取大小为3的主题,并将其分布用作相应翻译器的签名。然后,我们调查样本量,归一化方法和不平衡数据集对分类准确性的影响。我们还采用了模糊格推理分类器(FLR),其中FLR达到了最佳性能,分类准确率达到了70%。

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