Precise Analysis of Purpose Limitation in Data Flow Diagrams

Hanaa Alshareef, Katja Tuma, Sandro Stucki, G. Schneider, R. Scandariato
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引用次数: 2

Abstract

Data Flow Diagrams (DFDs) are primarily used for modelling functional properties of a system. In recent work, it was shown that DFDs can be used to also model non-functional properties, such as security and privacy properties, if they are annotated with appropriate security- and privacy-related information. An important privacy principle one may wish to model in this way is purpose limitation. But previous work on privacy-aware DFDs (PA-DFDs) considers purpose limitation only superficially, without explaining how the purpose of DFD activators and flows ought to be specified, checked or inferred. In this paper, we define a rigorous formal framework for (1) annotating DFDs with purpose labels and privacy signatures, (2) checking the consistency of labels and signatures, and (3) inferring labels from signatures. We implement our theoretical framework in a proof-of concept tool consisting of a domain-specific language (DSL) for specifying privacy signatures and algorithms for checking and inferring purpose labels from such signatures. Finally, we evaluate our framework and tool through a case study based on a DFD from the privacy literature.
数据流程图中目的限制的精确分析
数据流程图主要用于对系统的功能属性进行建模。最近的研究表明,如果用适当的安全和隐私相关信息进行注释,dfd也可以用于对非功能属性(如安全和隐私属性)进行建模。人们可能希望以这种方式建立一个重要的隐私原则,即目的限制。但是之前关于隐私感知DFD (pa -DFD)的工作只是表面地考虑了目的限制,而没有解释DFD激活器和流的目的应该如何指定、检查或推断。在本文中,我们定义了一个严格的形式化框架,用于(1)用目的标签和隐私签名注释dfd,(2)检查标签和签名的一致性,以及(3)从签名推断标签。我们在概念验证工具中实现了我们的理论框架,该工具由用于指定隐私签名的领域特定语言(DSL)和用于检查和推断这些签名的目的标签的算法组成。最后,我们通过基于隐私文献中的DFD的案例研究来评估我们的框架和工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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