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Software forensics for discriminating between program authors using case-based reasoning, feed-forward neural networks and multiple discriminant analysis

机译:软件取证用于使用基于案例的推理,前馈神经网络和多重判别分析来区分程序作者

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摘要

Software forensics is the field that, by treating pieces of program source code as linguistically and stylistically analyzable entities, attempts to investigate computer program authorship. This can be performed with the goal of identification, discrimination, or characterization of authors. In this paper we extract a set of 26 standard authorship metrics from 351 programs by 7 different authors. The use of feedforward neural networks, multiple discriminant analysis, and case-based reasoning is then investigated in terms of classification accuracy for the authors on both training and testing samples. The first two techniques produce remarkably similar results, with the best results coming from the case-based reasoning models. All techniques have high prediction accuracy rates, supporting the feasibility of the task of discriminating program authors based on source-code measurements
机译:软件取证是通过将程序源代码片段作为可从语言和风格上分析的实体来对待的领域,试图调查计算机程序作者的身份。可以以识别,区分或表征作者为目标。在本文中,我们从7个不同作者的351个程序中提取了26个标准作者资格度量标准集。然后根据作者在训练和测试样本上的分类准确性,研究了前馈神经网络,多重判别分析和基于案例的推理的使用。前两种技术产生非常相似的结果,最好的结果来自基于案例的推理模型。所有技术均具有较高的预测准确率,从而支持了基于源代码度量区分程序作者的任务的可行性

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