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SAFE: SPARQL Federation over RDF Data Cubes with Access Control

机译:安全:具有访问控制的RDF数据多维数据集上的SPARQL联合

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摘要

BackgroundSeveral query federation engines have been proposed for accessing public Linked Open Data sources. However, in many domains, resources are sensitive and access to these resources is tightly controlled by stakeholders; consequently, privacy is a major concern when federating queries over such datasets. In the Healthcare and Life Sciences (HCLS) domain real-world datasets contain sensitive statistical information: strict ownership is granted to individuals working in hospitals, research labs, clinical trial organisers, etc. Therefore, the legal and ethical concerns on (i) preserving the anonymity of patients (or clinical subjects); and (ii) respecting data ownership through access control; are key challenges faced by the data analytics community working within the HCLS domain. Likewise statistical data play a key role in the domain, where the RDF Data Cube Vocabulary has been proposed as a standard format to enable the exchange of such data. However, to the best of our knowledge, no existing approach has looked to optimise federated queries over such statistical data.
机译:背景技术已经提出了几种查询联合引擎来访问公共链接开放数据源。但是,在许多领域,资源都是敏感的,利益相关者严格控制对这些资源的访问。因此,在对此类数据集进行联合查询时,隐私是一个主要问题。在医疗保健和生命科学(HCLS)领域中,真实世界的数据集包含敏感的统计信息:严格授予在医院,研究实验室,临床试验组织者等工作的个人。因此,关于(i)保存的法律和道德问题患者(或临床受试者)的匿名性; (ii)通过访问控制尊重数据所有权;是HCLS域中工作的数据分析社区面临的主要挑战。同样,统计数据在该领域中也起着关键作用,RDF数据多维数据集词汇表已被建议作为一种标准格式来交换此类数据。但是,就我们所知,没有一种现有的方法可以对这种统计数据进行联合查询的优化。

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