论文标题

混乱的理解:私人计算的知情同意

Comprehension from Chaos: Towards Informed Consent for Private Computation

论文作者

Kacsmar, Bailey, Duddu, Vasisht, Tilbury, Kyle, Ur, Blase, Kerschbaum, Florian

论文摘要

私人计算包括多方计算和私人查询执行等技术,对使组织能够分析他们及其合作伙伴拥有的数据,同时维护数据主体的隐私,这对组织有很大的希望。尽管最近有兴趣就差异隐私进行沟通,但最终用户对私人计算的看法尚未被研究。为了填补这一空白,我们进行了22次半结构化访谈,调查了用户对私人计算对它们的私人计算的理解和期望。访谈以四个具体数据分析方案(例如AD转换分析)为中心,每个方案都具有不使用私人计算的变体,而另一种则使用(私有集合交集,多方计算和隐私保护查询程序)。尽管参与者对私人计算的抽象定义进行了斗争,但他们发现了具体的场景启发和合理,即使我们没有解释复杂的加密基础。私人计算增加了参与者对数据共享的接受,但不是无条件的;数据共享和分析的目的是他们态度的主要驱动力。通过集体活动,参与者强调了详细介绍计算目的的重要性,并澄清在描述对最终用户的私人计算时,对私人计算的投入并非在整个组织中共享。

Private computation, which includes techniques like multi-party computation and private query execution, holds great promise for enabling organizations to analyze data they and their partners hold while maintaining data subjects' privacy. Despite recent interest in communicating about differential privacy, end users' perspectives on private computation have not previously been studied. To fill this gap, we conducted 22 semi-structured interviews investigating users' understanding of, and expectations for, private computation over data about them. Interviews centered on four concrete data-analysis scenarios (e.g., ad conversion analysis), each with a variant that did not use private computation and another that did (private set intersection, multi-party computation, and privacy preserving query procedures). While participants struggled with abstract definitions of private computation, they found the concrete scenarios enlightening and plausible even though we did not explain the complex cryptographic underpinnings. Private computation increased participants' acceptance of data sharing, but not unconditionally; the purpose of data sharing and analysis was the primary driver of their attitudes. Through collective activities, participants emphasized the importance of detailing the purpose of a computation and clarifying that inputs to private computation are not shared across organizations when describing private computation to end users.

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