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A fuzzy logic approach to computer software source code authorship analysis

机译:计算机软件源代码作者分析的模糊逻辑方法

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摘要

Software source code authorship analysis has become an important area in recent years with promising applications in both the legal sector (such as proof of ownership and software forensics) and the education sector (such as plagiarism detection and assessing style). Authorship analysis encompasses the sub-areas of author discrimination, author characterization, and similarity detection (also referred to as plagiarism detection). While a large number of metrics have been proposed for this task, many borrowed or adapted from the area of computational linguistics, there is a difficulty with capturing certain types of information in terms of quantitative measurement. Here it is proposed that existing numerical metrics should be supplemented with fuzzy-logic linguistic variables to capture more subjective elements of authorship, such as the degree to which comments match the actual source code’s behavior. These variables avoid the need for complex and subjective rules, replacing these with an expert’s judgement. Fuzzy-logic models may also help to overcome problems with small data sets for calibrating such models. Using authorship discrimination as a test case, the utility of objective and fuzzy measures, singularly and in combination, is assessed as well as the consistency of the measures between counters.
机译:近年来,软件源代码作者身份分析已成为重要领域,在法律部门(例如所有权证明和软件取证)和教育部门(例如窃检测和评估样式)中都有广阔的应用前景。作者分析包括作者歧视,作者特征和相似性检测(也称为窃检测)的子区域。尽管已针对此任务提出了大量度量标准,但许多度量标准是从计算语言学领域借鉴或改编而成的,但在定量测量方面难以捕获某些类型的信息。在这里,建议对现有的数字量度进行模糊逻辑语言变量的补充,以捕获作者身份的更多主观因素,例如注释与实际源代码的行为相匹配的程度。这些变量避免了使用复杂且主观的规则的需要,而由专家的判断取代了这些规则。模糊逻辑模型还可以帮助克服用于校准此类模型的小数据集的问题。使用作者身份歧视作为测试案例,评估了客观和模糊度量(单项或组合使用)的效用以及计数器之间度量的一致性。

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