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A Privacy-Preserving Image Retrieval Scheme Using Secure Local Binary Pattern in Cloud Computing

机译:云计算中安全局部二进制模式的隐私保留图像检索方案

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摘要

The rapid growth of digital images motivates organizations and individuals to outsource image storage and computation to the cloud. However, the defenseless upload will raise the risk of privacy leakage while the simple encryption would impede the efficient usage of data. In this paper, we propose a privacy-preserving image retrieval scheme, in which the images are encrypted but similar images to a query can be efficiently retrieved from the encrypted images. Specifically, the image content is protected by big-block permutation, 3 x 3 block permutation within big-blocks, pixel permutation within 3 x 3 blocks, and polyalphabetic cipher. The use of polyalphabetic cipher improves security and causes no degradation in terms of retrieval accuracy as the substitution tables are generated by the order-preserving encryption. In this way, secure Local Binary Pattern (LBP) features can be directly extracted as the local features from the encrypted big-blocks, which is efficient as there is no communication between the cloud server and image owners to do so. The secure local LBP features are used to generate the feature vector for each image by the bag-of-words model. Finally, the similarity among the encrypted images is measured by the Manhattan distance of such feature vectors. The security analysis and experimental results demonstrate that the proposed scheme outperforms the main existing schemes in terms of security and retrieval accuracy.
机译:数字图像的快速增长激励组织和个人将图像存储和计算外包给云。但是,裁判上传将提高隐私泄漏的风险,而简单的加密会妨碍数据的有效使用情况。在本文中,我们提出了一种隐私保留图像检索方案,其中图像被加密,但是可以从加密的图像有效地检索到查询的类似图像。具体地,图像内容受到大块置换的保护,在大块内的3×3块置换,在3×3块内的像素置换和多孔密码。多孔密码的使用改善了安全性,并且由于替代表由订单保留加密生成替代表而导致检索精度没有降级。以这种方式,可以直接提取安全的本地二进制模式(LBP)特征作为来自加密的大块的本地特征,这是高效的,因为云服务器和图像所有者之间没有通信。安全本地LBP功能用于由文字袋模型生成每个图像的特征向量。最后,通过这种特征向量的曼哈顿距离来测量加密图像之间的相似性。安全性分析和实验结果表明,在安全性和检索准确性方面,该方案表明该方案优于主要现有计划。

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