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Towards Privacy Aware Data Analysis Workflows for e-Science

机译:迈向e-science的隐私意识数据分析工作流程

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e-Science is getting more distributed and collaborative and data privacy quickly becomes a major concern, especially when the data contain sensitive information. Existing data access policies for privacy management are too restrictive for supporting the large variety of data analysis needs in e-Science. In this paper, we argue the need of a new type of policies that govern data privacy based on the type of processing done on the data. A semantic workflow approach is proposed to address the challenge. Data analysis processes are described as workflows. Ontologies for data analysis and privacy preservation describe the functionalities and the privacy attributes of the processes, as well as process-constraining privacy policies. We give some examples of related policies with their potential fields for application explained. Also, we present via a case study on distributed data clustering to illustrate how the approach could be integrated with a workflow system to make it privacy aware.
机译:e-Science正在获得更多分发,协作和数据隐私迅速成为一个主要问题,特别是当数据包含敏感信息时。保密性管理的现有数据访问策略对于支持电子科学的各种数据分析需求来说太限制了。在本文中,我们认为需要一种基于数据类型的处理类型管理数据隐私的新类型策略。提出了一种语义工作流方法来解决挑战。数据分析过程被描述为工作流程。用于数据分析和隐私保存的本体描述过程的功能和隐私属性,以及过程限制隐私政策。我们提供了一些相关策略的示例,其中包含申请的潜在字段。此外,我们通过关于分布式数据聚类的案例研究来说明如何与工作流系统集成方法,以使其隐私意识到。

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