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A Vine Copula Model for Predicting the Effectiveness of Cyber Defense Early-Warning

机译:一种预测网络防御早期警告的有效性的藤蔓模型模型

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摘要

Internet-based computer information systems play critical roles in many aspects of modern society. However, these systems are constantly under cyber attacks that can cause catastrophic consequences. To defend these systems effectively, it is necessary to measure and predict the effectiveness of cyber defense mechanisms. In this article, we investigate how to measure and predict the effectiveness of an important cyber defense mechanism that is known as early-warning. This turns out to be a challenging problem because we must accommodate the dependence among certain four-dimensional time series. In the course of using a dataset to demonstrate the prediction methodology, we discovered a new nonexchangeable and rotationally symmetric dependence structure, which may be of independent value. We propose a new vine copula model to accommodate the newly discovered dependence structure, and show that the new model can predict the effectiveness of early-warning more accurately than the others. We also discuss how to use the prediction methodology in practice.
机译:基于互联网的计算机信息系统在现代社会的许多方面发挥着关键角色。然而,这些系统在网络攻击中不断地造成灾难性后果。为了有效地捍卫这些系统,有必要衡量和预测网络防御机制的有效性。在本文中,我们调查如何衡量和预测重要的网络防御机制的有效性,称为早期预警。这结果是一个具有挑战性的问题,因为我们必须适应某些四维时间序列之间的依赖。在使用数据集来证明预测方法的过程中,我们发现了一种新的非扩张和旋转对称的依赖结构,其可能是独立的值。我们提出了一种新的藤蔓编程模型,以适应新发现的依赖结构,并表明新模型可以比其他模型更准确地预测早期警告的有效性。我们还讨论如何在实践中使用预测方法。

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