移动数据捐赠的需求与隐私威胁分析

Leonie Reichert
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引用次数: 0

摘要

近年来,通过移动应用程序收集的个人和医疗数据已成为研究人员的有用数据源。像Apple ResearchKit这样的平台试图让非专家尽可能容易地建立这样的数据收集活动。但是,由于收集到的数据是敏感的,因此必须对其进行很好的保护。提供技术隐私保证的方法通常会限制数据和结果的有用性。在本文中,我们对移动数据捐赠进行建模和分析,以更好地理解隐私保护方法必须满足的要求。为此,我们通过分析现有的应用程序,概述了研究人员对数据捐赠应用程序的功能要求。我们还创建了当前实践的模型,并使用LINDDUN隐私框架对其进行分析,以识别隐私威胁。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Analysis of Requirements and Privacy Threats in Mobile Data Donations
In recent years, personal and medical data collected through mobile apps has become a useful data source for researchers. Platforms like Apple ResearchKit try to make it as easy as possible for non-experts to set up such data collection campaigns. However, since the collected data is sensitive, it must be well protected. Methods that provide technical privacy guarantees often limit the usefulness of the data and results. In this paper, we model and analyze mobile data donation to better understand the requirements that must be fulfilled by privacy-preserving approaches. To this end, we give an overview of the functionalities researchers require from data donation apps by analyzing existing apps. We also create a model of the current practice and analyze it using the LINDDUN privacy framework to identify privacy threats.
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