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Sharing Data for Public Security

机译:共享公共安全数据

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摘要

Data sharing is a valuable tool for improving security. It allows integrating information from multiple sources to better identify and respond to global security threats. On the other side, sharing of data is limited by privacy and confidentiality. A possible solution is removing or obfuscating part of the data before release (anonymization), and, to this scope, various masking algorithms have been proposed. However, finding the right balance between privacy and the quality of data is often difficult, and it needs a fine calibration of the anonymization process. It includes choosing the 'best' set of masking algorithms and an estimation of the risk in releasing the data. Both these processes are rather complex, especially for non-expert users. In this paper, we illustrate the typical issues in the anonymization process, and introduce a tool for assisting the user in the choice of the set of masking transformations. We also propose a caching system to speed up this process over multiple runs on similar datasets. Although, the current version has limited functionalities, and more extensive testing is needed, it is a first step in the direction of developing a user-friendly support tool for anonymization.
机译:数据共享是提高安全性的宝贵工具。它允许集成来自多个来源的信息,以更好地识别和应对全球安全威胁。另一方面,数据共享受到隐私和机密性的限制。一种可能的解决方案是在发布(匿名化)之前删除或混淆部分数据,并且为此提出了各种屏蔽算法。但是,通常很难在隐私和数据质量之间找到适当的平衡,并且需要对匿名化过程进行精细的校准。它包括选择“最佳”屏蔽算法集以及对发布数据的风险进行估计。这两个过程都相当复杂,特别是对于非专业用户而言。在本文中,我们说明了匿名化过程中的典型问题,并介绍了一种工具来帮助用户选择掩蔽转换集。我们还提出了一种缓存系统,以加快在类似数据集上多次运行的速度。尽管当前版本的功能有限,需要进行更广泛的测试,但这是朝着开发用户友好的匿名支持工具迈出的第一步。

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