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An Artificial Arms Race: Could it Improve Mobile Malware Detectors?

机译:人工军备竞赛:它可以改善移动恶意软件探测器吗?

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On the Internet today, mobile malware is one of the most common attack methods. These attacks are usually established via malicious mobile apps. To combat this threat, one technique used is the deployment of mobile malware detectors. As the mobile threats evolve, designing and developing mobile malware detectors remains a challenging task. In this paper, we aim to explore whether creating an artificial arms race between mobile malware and detectors could improve the ability of the detector to adapt to the evolving threats. To better model this interaction, we present a co-evolution of both sides of the arms race using genetic algorithms. The experimental evaluations on publicly available malicious and non-malicious mobile apps and their variants generated by the artificial arms race show that this approach improves the detectors understanding of the problem.
机译:在今天的互联网上,移动恶意软件是最常见的攻击方法之一。这些攻击通常通过恶意移动应用程序建立。为了打击这种威胁,使用的一种技术是移动恶意软件探测器的部署。随着移动威胁的发展,设计和开发移动恶意软件探测器仍然是一个具有挑战性的任务。在本文中,我们的目标是探索在移动恶意软件和探测器之间创建人工军备竞赛,可以提高探测器适应不断发展的威胁的能力。为了更好地模拟这种互动,我们使用遗传算法提出了双臂竞赛两侧的共同演变。对公开可恶劣和非恶意移动应用的实验评估及其人工军备竞赛产生的变体表明,这种方法改善了对问题的理解。

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