我应该保护哪些资料?:为数据安全分析师提供推荐和规划支持

Tianyi Li, G. Convertino, Ranjeet Kumar Tayi, Shima Kazerooni
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引用次数: 14

摘要

2018年Facebook的5000万用户账户或2017年Equifax的1.43亿用户账户等重大公司敏感数据泄露事件显示了被动数据安全技术的局限性。公司和政府机构正在转向主动数据安全技术,从源头保护敏感数据。然而,数据安全分析师在数据保护决策中仍然面临两个基本挑战:1)数据存储库数量的增加和需要考虑的保护技术带来的信息过载;2)在给定组织当前目标和可用资源的情况下,对保护计划进行优化。在这项工作中,我们为安全分析师提出了一个智能用户界面,该界面可以推荐要保护的数据,可视化模拟保护影响,并帮助构建保护计划。在对专家用户和实践的访问有限的领域中,我们从行业中的安全分析师那里获得用户需求,并基于体系结构和概念属性建模数据风险。我们的初步评估表明,该设计提高了对推荐保护措施的理解和信任,并有助于在保护计划中转换风险信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
What data should I protect?: recommender and planning support for data security analysts
Major breaches of sensitive company data, as for Facebook's 50 million user accounts in 2018 or Equifax's 143 million user accounts in 2017, are showing the limitations of reactive data security technologies. Companies and government organizations are turning to proactive data security technologies that secure sensitive data at source. However, data security analysts still face two fundamental challenges in data protection decisions: 1) the information overload from the growing number of data repositories and protection techniques to consider; 2) the optimization of protection plans given the current goals and available resources in the organization. In this work, we propose an intelligent user interface for security analysts that recommends what data to protect, visualizes simulated protection impact, and helps build protection plans. In a domain with limited access to expert users and practices, we elicited user requirements from security analysts in industry and modeled data risks based on architectural and conceptual attributes. Our preliminary evaluation suggests that the design improves the understanding and trust of the recommended protections and helps convert risk information in protection plans.
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