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Enabling Efficient and Geometric Range Query With Access Control Over Encrypted Spatial Data

机译:通过对加密空间数据的访问控制来实现高效的几何范围查询

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摘要

As a basic query function, range query has been exploited in many scenarios such as SQL retrieves, location-based services, and computational geometry. Meanwhile, with explosive growth of data volume, users are increasingly inclining to store data on the cloud for saving local storage and computational cost. However, a long-standing problem is that the user's data may be completely revealed to the cloud server because it has full data access right. To cope with this problem, a frequently-used method is to encrypt raw data before outsourcing them, but the availability and operability of data will be reduced significantly. In this paper, we propose an efficient and geometric range query scheme (EGRQ) supporting searching and data access control over encrypted spatial data. We employ secure KNN computation, polynomial fitting technique, and order-preserving encryption to achieve secure, efficient, and accurate geometric range query over cloud data. Then, we propose a novel spatial data access control strategy to refine user's rights in our EGRQ. To improve the efficiency, R-tree is adopted to reduce the searching space and matching times in whole search process. Finally, we theoretically prove the security of our proposed scheme in terms of confidentiality of spatial data, privacy protection of index and trapdoor, and the unlinkability of trapdoors. In addition, extensive experiments demonstrate the high efficiency of our proposed model compared with existing schemes.
机译:作为基本查询功能,范围查询已在许多方案中得到利用,例如SQL检索,基于位置的服务和计算几何。同时,随着数据量的爆炸性增长,用户越来越倾向于将数据存储在云中以节省本地存储和计算成本。但是,长期存在的问题是,由于具有完全的数据访问权限,因此用户的数据可能会完全显示给云服务器。为了解决这个问题,一种常用的方法是在将原始数据外包之前对其进行加密,但是数据的可用性和可操作性将大大降低。在本文中,我们提出了一种有效的几何范围查询方案(EGRQ),该方案支持对加密空间数据的搜索和数据访问控制。我们采用安全的KNN计算,多项式拟合技术和顺序保留加密技术来实现对云数据的安全,高效和准确的几何范围查询。然后,我们提出了一种新颖的空间数据访问控制策略,以完善EGRQ中的用户权限。为了提高效率,在整个搜索过程中采用R树来减少搜索空间和匹配时间。最后,我们从空间数据的机密性,索引和活板门的隐私保护以及活板门的不可链接性方面,从理论上证明了所提出方案的安全性。此外,大量实验证明了我们提出的模型与现有方案相比具有很高的效率。

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  • 作者单位

    School of Computer Science and Engineering, University of Electronic Science and Technology of China, Chengdu, China;

    School of Computer Science and Engineering, University of Electronic Science and Technology of China, Chengdu, China;

    School of Computer Science and Engineering, University of Electronic Science and Technology of China, Chengdu, China;

    Department of Computer Science, The University of Memphis, Memphis, TN, USA;

    Department of Physics and Computer Science, Faculty of Science, Wilfrid Laurier University, Waterloo, ON, Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Servers; Cryptography; Spatial databases; Indexes; Access control; Cloud computing;

    机译:服务器;密码学;空间数据库;索引;访问控制;云计算;

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