A Threat Model for Soft Privacy on Smart Cars

Mario Raciti, G. Bella
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引用次数: 1

Abstract

Modern cars are getting so computerised that ENISA’s phrase “smart cars” is a perfect fit. The amount of personal data that they process is very large and, yet, increasing. Hence, the need to address citizens’ privacy while they drive and, correspondingly, the importance of privacy threat modelling (in support of a respective risk assessment, such as through a Data Protection Impact Assessment). This paper addresses privacy threats by advancing a general modelling methodology and by demonstrating it specifically on soft privacy, which ensures citizens’ full control on their personal data. By considering all relevant threat agents, the paper applies the methodology to the specific automotive domain while keeping threats at the same level of detail as ENISA’s. The main result beside the modelling methodology consists of both domain-independent and automotive domain-dependent soft privacy threats. While cybersecurity has been vastly threat-modelled so far, this paper extends the literature with a threat model for soft privacy on smart cars, producing 17 domain-independent threats that, associated with 41 domain-specific assets, shape a novel set of domain-dependent threats in automotive.
智能汽车软隐私威胁模型
现代汽车的计算机化程度越来越高,因此ENISA的术语“智能汽车”是一个完美的契合。他们处理的个人数据量非常大,而且还在不断增加。因此,需要解决公民在开车时的隐私问题,相应地,隐私威胁建模的重要性(以支持相应的风险评估,例如通过数据保护影响评估)。本文通过推进一般建模方法,并通过具体展示软隐私来解决隐私威胁,软隐私确保公民对其个人数据的完全控制。通过考虑所有相关的威胁因子,本文将该方法应用于特定的汽车领域,同时将威胁保持在与ENISA相同的详细级别。除了建模方法外,主要结果包括领域无关和汽车领域相关的软隐私威胁。虽然到目前为止,网络安全已经被广泛地威胁建模,但本文通过智能汽车软隐私的威胁模型扩展了文献,产生了17个领域独立的威胁,这些威胁与41个领域特定的资产相关联,形成了一组新的汽车领域依赖威胁。
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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