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Inverted XML Access Control Model Based on Ontology Semantic Dependency

机译:基于本体语义相关性的XML反向访问控制模型

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摘要

In the era of big data, the conflict between data mining and data privacy protection is increasing day by day. Traditional information security focuses on protecting the security of attribute values without semantic association. The data privacy of big data is mainly reflected in the effective use of data without exposing the user's sensitive information. Considering the semantic association, reasonable security access for privacy protect is required. Semi-structured and self-descriptive XML (eXtensible Markup Language) has become a common form of data organization for database management in big data environments. Based on the semantic integration nature of XML data, this paper proposes a data access control model for individual users. Through the semantic dependency between data and the integration process from bottom to top, the global visual range of inverted XML structure is realized. Experimental results show that the model effectively protects the privacy and has high access efficiency.
机译:在大数据时代,数据挖掘与数据隐私保护之间的冲突日益增加。传统的信息安全性着重于在没有语义关联的情况下保护属性值的安全性。大数据的数据隐私性主要体现在数据的有效使用上,而不会暴露用户的敏感信息。考虑到语义关联,需要对隐私保护进行合理的安全访问。半结构化和自描述性XML(可扩展标记语言)已成为大数据环境中数据库管理的一种常见的数据组织形式。基于XML数据的语义集成特性,本文提出了一种针对单个用户的数据访问控制模型。通过数据之间的语义依赖性以及从下到上的集成过程,实现了反向XML结构的全局可视范围。实验结果表明,该模型有效地保护了隐私并具有较高的访问效率。

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