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A Comparative Study of Malware Family Classification

机译:恶意软件家庭分类的比较研究

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In this paper, we present a comparative study of conventional malware family classification techniques and identifiy their limitations. In our study, we investigate three different feature set, function length frequency and printable string information as static features and Application Programming Interface (API) calls and API parameters as dynamic features. In our classification process, we used some of well-known machine-learning algorithms by invoking WEKA libraries. We made a comparative analysis and conclude that the independent features are not good enough to defence against current as well as future malware.
机译:在本文中,我们展示了传统恶意软件家庭分类技术的比较研究,并确定了他们的局限性。在我们的研究中,我们调查了三个不同的功能集,功能长度频率和可打印的字符串信息作为静态功能和应用程序编程接口(API)调用和API参数作为动态功能。在我们的分类过程中,我们通过调用Weka库使用一些知名的机器学习算法。我们做出了比较分析并得出结论,独立功能不足以防御当前以及未来的恶意软件。

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