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Systems and methods for enhancing data protection by anonosizing structured and unstructured data and incorporating machine learning and artificial intelligence in classical and quantum computing environments

机译:通过对结构化和非结构化数据进行匿名处理以及在经典和量子计算环境中结合机器学习和人工智能来增强数据保护的系统和方法

摘要

Systems, computer-readable media, and methods for improving both data privacy/anonymity and data value, wherein real-world, synthetic, or other data related to a data subject can be used while minimizing re-identification risk by unauthorized parties and enabling data, including quasi-identifiers, related to the data subject to be disclosed to any authorized party by granting access only to the data relevant to that authorized party's purpose, time period, purpose, place and/or other criterion via the required obfuscation of specific data values, e.g., pursuant to the GDPR or HIPAA, by incorporating a given range of those values into a cohort, wherein only the defined cohort values are disclosed to the given authorized party. Privacy policies may include any privacy enhancement techniques (PET), including: data protection, dynamic de-identification, anonymity, pseudonymity, granularization, and/or obscurity policies. Such systems, media and methods may be implemented on both classical and quantum computing devices.
机译:用于改善数据保密性/匿名性和数据价值的系统,计算机可读介质和方法,其中可以使用与数据主体相关的真实,合成或其他数据,同时最大程度地减少未授权方的重新识别风险并启用数据通过准予混淆特定数据,仅授予与该授权方的目的,时间段,目的,位置和/或其他标准有关的数据的访问权限,从而与要向任何授权方披露的数据有关的数据(包括准标识符)值,例如根据GDPR或HIPAA,通过将这些值的给定范围合并到队列中,其中仅将定义的队列值披露给给定的授权方。隐私策略可以包括任何隐私增强技术(PET),包括:数据保护,动态取消标识,匿名,假名,粒度化和/或模糊策略。这样的系统,媒体和方法可以在经典和量子计算设备上实现。

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