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Application of DRSA-ANN Classifier in Computational Stylistics

机译:DRSA-ANN分类器在计算文体学中的应用

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Computational stylistics or stylometry deals with characteristics of writing styles. It assumes that each author expresses themselves in such an individual way that a writing style can be uniquely defined and described by some quantifiable measures. With help of contemporary computers the stylometric tasks of author characterisation, comparison, and attribution can be implemented using either some statistic-oriented approaches or methodologies from artificial intelligence domain. The paper presents results of research on an application of a hybrid classifier, combining Dominance-based Rough Set Approach and Artificial Neural Networks, within the task of authorship attribution for literary texts. The performance of the classifier is observed while exploiting an analysis of characteristic features basing on the cardinalities of relative reducts found within rough set processing.
机译:计算文体或笔法处理写作风格的特征。它假定每个作者都以一种个性化的方式表达自己,从而可以通过一些可量化的方法来唯一定义和描述一种写作风格。在当代计算机的帮助下,作者表征,比较和归因的笔势任务可以使用一些面向统计的方法或人工智能领域的方法来实现。本文提出了一种混合分类器的应用研究成果,该混合分类器结合了基于优势的粗糙集方法和人工神经网络在文学著作的作者身份归属任务中的应用。在基于粗糙集处理中发现的相对还原基数对特征特征进行分析时,观察分类器的性能。

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