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An Effective Compressive Sensing based N-gram Approach for plagiarism detection

机译:基于有效压缩感知的N-gram方法进行窃检测

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Plagiarism detection over the document is an important area of research, which directly deals with document and its content copying. Many algorithms for such document processing such as word matching, string matcher, similarity measure and Rabin-Karp etc. were proposed. Previous approaches are limited while dealing with data analysis work with single level of processing. Thus, they either work with document pre-processing execution or further plagiarism detection. In this paper, an advance novel approach which is compressive sensing based on N-gram (CS-RKP) is proposed. This algorithm used sampling module for data processing and further cost function for document redundancy detection, minimization of iteration and further finding similarity over the document. The result observation using computation time, similarity measure shows the efficiency of proposed algorithm.
机译:对文档进行detection窃检测是一个重要的研究领域,它直接处理文档及其内容的复制。提出了许多用于此类文档处理的算法,例如单词匹配,字符串匹配器,相似性度量和Rabin-Karp等。以前的方法在单级处理数据分析工作时受到限制。因此,他们可以执行文档预处理或进一步进行or窃检测。本文提出了一种基于N-gram(CS-RKP)的压缩感知技术。该算法使用采样模块进行数据处理,并使用进一步的成本函数进行文档冗余检测,最小化迭代并进一步发现文档之间的相似性。利用计算时间,相似性度量对结果进行观察,证明了所提算法的有效性。

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