具有隐私保障的基于策略的社会数据访问基础设施

Palanivel A. Kodeswaran, E. Viegas
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引用次数: 7

摘要

我们提出了一个基于政策的社会数据访问基础设施,其目标是使科学研究成为可能,同时保护隐私。我们描述了随着越来越多的用户数据集(如社交网络、医疗数据集等)的增加,可以实现的激励应用场景。这些数据集包含敏感的用户信息,在与第三方共享时必须足够谨慎,以防止隐私泄露。我们的框架的目标之一是允许用户控制如何使用他们的数据,同时使聚合的数据能够用于科学研究。我们扩展了现有的访问控制语言,以显式地模拟数据共享中的用户意图,并支持超越传统访问控制的允许/拒绝二进制语义的其他访问模式。我们描述了我们的策略基础设施,并展示了如何使用它来支持上述场景,同时仍然保证个人隐私,并展示了扩展SecPAL授权语言以考虑新角色和操作的框架的原型实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Policy Based Infrastructure for Social Data Access with Privacy Guarantees
We present a policy based infrastructure for social data access with the goal of enabling scientific research, while preserving privacy. We describe motivating application scenarios that could be enabled with the growing number of user datasets such as social networks, medical datasets etc. These datasets contain sensitive user information and sufficient caution must be exercised while sharing them with third parties to prevent privacy leaks. One of the goals of our framework is to allow users to control how their data is used, while at the same time enabling the aggregate data to be used for scientific research. We extend existing access control languages to explicitly model user intent in data sharing as well as supporting additional access modes that go beyond the traditional allow/deny binary semantics of access control. We describe our policy infrastructure and show how it can be used to enable the above scenarios while still guaranteeing individual privacy and present a prototype implementation of the framework extending the SecPAL authorization language to account for new roles and operations.
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