电子图书馆作者风格的计算识别——以词汇特征为例

S. Ouamour, H. Sayoud
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引用次数: 0

摘要

在目前的工作中,我们打算提出一个深入的研究开发了一个数字图书馆,称为HAT语料库,为作者归属的目的。因此,从web数字图书馆中提取了由100个不同作者撰写的300个文档的数据集,并对其进行处理,以完成作者风格分析任务。所有的文件都与旅行主题有关,并且是用阿拉伯语写的。基本上,应该遵守三个重要的文体学规则:最小文档大小,所有文档的主题相同,以及相同的体裁。在这项工作中,我们特别努力在语料库准备过程中认真尊重这些条件。即使用三个词汇特征:固定长度词、稀有词和后缀,并使用基于质心的曼哈顿距离对其进行评估。所使用的识别方法显示出有趣的结果,准确率约为0.94。
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Computational Identification of Author Style on Electronic Libraries - Case of Lexical Features
In the present work, we intend to present a thorough study developed on a digital library, called HAT corpus, for a purpose of authorship attribution. Thus, a dataset of 300 documents that are written by 100 different authors, was extracted from the web digital library and processed for a task of author style analysis. All the documents are related to the travel topic and written in Arabic. Basically, three important rules in stylometry should be respected: the minimum document size, the same topic for all documents and the same genre too. In this work, we made a particular effort to respect those conditions seriously during the corpus preparation. That is, three lexical features: Fixed-length words, Rare words and Suffixes are used and evaluated by using a centroid based Manhattan distance. The used identification approach shows interesting results with an accuracy of about 0.94.
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