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Matching information security vulnerabilities to organizational security profiles: a genetic algorithm approach

机译:将信息安全漏洞与组织安全配置文件相匹配:一种遗传算法

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摘要

Organizations are making substantial investments in information security to reduce the risk presented by vulnerabilities in their information technology (IT) infrastructure. However, each security technology only addresses specific vulnerabilities and potentially creates additional vulnerabilities. The objective of this research is to present and evaluate a Genetic Algorithm (GA)-based approach enabling organizations to choose the minimal-cost security profile providing the maximal vulnerability coverage. This approach is compared to an enumerative approach for a given test set. The GA-based approach provides favorable results, eventually leading to improved tools for supporting information security investment decisions.
机译:组织正在对信息安全进行大量投资,以减少其信息技术(IT)基础架构中的漏洞带来的风险。但是,每种安全技术仅解决特定的漏洞,并可能创建其他漏洞。这项研究的目的是介绍和评估一种基于遗传算法(GA)的方法,使组织能够选择成本最低的安全配置文件,以提供最大的漏洞覆盖率。将这种方法与给定测试集的枚举方法进行比较。基于GA的方法提供了令人满意的结果,最终导致改进了支持信息安全投资决策的工具。

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