N-Gram Based Approach for Text Authorship Classification

Author:

Mikhailova Elena1,Diurdeva Polina1,Shalymov Dmitry1

Affiliation:

1. Saint Petersburg State University, Russia

Abstract

Automated authorship attribution is actual to identify the author of an anonymous texts, or texts whose authorship is in doubt. It can be used in various applications including author verification, plagiarism detection, computer forensics and others. In this article, the authors analyze an approach based on frequency combination of letters is investigated for solving such a task as classification of documents by authorship. This technique could be used to identify the author of a computer program from a predefined set of possible authors. The effectiveness of this approach is significantly determined by the choice of metric. The research examines and compares four different distance measures between a text of unknown authorship and an authors' profile: L1 measure, Kullback-Leibler divergence, base metric of Common N-gram method (CNG) and a certain variation of dissimilarity measure of CNG method. Comparison outlines cases when some metric outperforms others with a specific parameter combination. Experiments are conducted on different Russian and English corpora.

Publisher

IGI Global

Subject

General Computer Science

Reference32 articles.

1. Author identification based on word distribution in word space

2. Borisov, L. A., & Orlov Y. N., & Osminin K. P. (2013). Identification of an author of a text based on a distribution of frequencies of letter combinations. Applied Informatics, 26(2), 95-108.

3. Cavnar, W. B., & Trenkle, J. M. (1994). N-gram-Based Text Categorization. In Proceedings of SDAIR-94,3rd Annual Symposium on Document Analysis and Information Retrieval.

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