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Using Approximate Bayesian Computation to Empirically Test Email Malware Propagation Models Relevant to Common Intervention Actions

机译:使用近似贝叶斯计算到经验测试电子邮件的恶意软件传播模型与常见的干预操作相关

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There are different ways for malware to spread from device to device. Some methods depend on the presence of a vulnerability that can be exploited along with some action taken by a user of the device. Malware propagating through email are one such example. While existing research has explored potential factors and models for simulating this form of propagation, it remains for these potential factors and models to be empirically tested and supported using field collected incident data. We review a common model for simulating the spread of email malware and use simulations to illustrate the potential impacts of connection topologies and different distributions of associated user actions. We use simulations to examine the potential impact of two types of commonly available interventions-patching vulnerable devices and blocking the transmission of infected messages in combination with different connection topologies and different distributions of user actions. Finally, we explore the use of Approximate Bayesian Computation (ABC) as a method to compare simulation results to empirical data to assess different model features, and to infer corresponding model parameter values from field collected email malware incident data.
机译:恶意软件有不同的方法来从设备传播到设备。某些方法取决于存在可以利用设备的某些动作的漏洞的存在。通过电子邮件传播的恶意软件是这样的示例。虽然现有的研究已经探索了模拟这种传播的潜在因素和模型,但它仍仍然用于这些潜在的因素和模型,使用现象收集的事件数据进行经验测试和支持。我们审查了模拟电子邮件恶意软件的传播的公共模型,并使用模拟来说明连接拓扑和相关用户操作的不同分布的潜在影响。我们使用模拟来检查两种类型常用的干预易受攻击设备的潜在影响,并阻止感染消息的传输结合不同的连接拓扑和不同的用户动作分布。最后,我们探讨了近似贝叶斯计算(ABC)作为将模拟结果与经验数据进行比较以评估不同模型特征的方法,以及从现场收集的电子邮件恶意软件事件数据中推断相应的型号参数值。

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