Privacy-Preserving Content-Based Image Retrieval in the Cloud

Bernardo Ferreira, João Rodrigues, J. Leitao, H. Domingos
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引用次数: 79

Abstract

Storage requirements for visual data have been increasing in recent years, following the emergence of many new highly interactive multimedia services and applications for both personal and corporate use. This has been a key driving factor for the adoption of cloud-based data outsourcing solutions. However, outsourcing data storage to the Cloud also leads to new challenges that must be carefully addressed, especially regarding privacy. In this paper we propose a secure framework for outsourced privacy-preserving storage and retrieval in large image repositories. Our proposal is based on IES-CBIR, a novel Image Encryption Scheme that displays Content-Based Image Retrieval properties. Our solution enables both encrypted storage and searching using CBIR queries while preserving privacy. We have built a prototype of the proposed framework, formally analyzed and proven its security properties, and experimentally evaluated its performance and precision. Our results show that IES-CBIR is provably secure, allows more efficient operations than existing proposals, both in terms of time and space complexity, and enables more reliable practical application scenarios.
云中保护隐私的基于内容的图像检索
近年来,随着个人和企业使用的许多新的高度交互式多媒体服务和应用程序的出现,对可视数据的存储需求不断增加。这是采用基于云的数据外包解决方案的关键驱动因素。然而,将数据存储外包到云端也会带来新的挑战,必须谨慎应对,尤其是在隐私方面。在本文中,我们提出了一个安全的框架,用于大型图像存储库中的外包隐私保护存储和检索。我们的提议是基于IES-CBIR,一种新颖的图像加密方案,显示基于内容的图像检索属性。我们的解决方案支持使用CBIR查询进行加密存储和搜索,同时保护隐私。我们构建了该框架的原型,正式分析和证明了其安全特性,并对其性能和精度进行了实验评估。我们的研究结果表明,IES-CBIR可证明是安全的,在时间和空间复杂性方面都比现有提案更有效地运行,并实现更可靠的实际应用场景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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