垂直分割外包数据隐私保护的密码子模密码系统研究

M. Yogasini, B. Prathibha
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引用次数: 0

摘要

数据通过各种方式在云上传递。保护数据不受未经批准的用户访问任何结构中的信息是至关重要的。通过使用加密计算对文本进行编码,将纯文本更改为难以理解的配置,从而保证信息避难所的安全,并且支持这些技术用于对文本进行置乱,以确保其数据不受攻击者的攻击,从而保证数据保护。脱氧核糖核酸(DNA)是一种用于为分布式计算数据提供安全性的加密方法。本文提出了一种基于密码模密码的云数据垂直分区算法,为交易数据提供安全保障。采用关联规则挖掘和频繁项集策略对垂直划分的信息库中频繁项间的关联规则进行聚合。将该密码子模算法与传统的同态加密算法进行了对比,展示了Apriori、FP-Growth和Eclat等规则挖掘计算。结果表明,该算法在性能上优于同态加密,具有较高的安全性。
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Study on Codon Modulo Cryptosystem for Privacy Preservation of Vertically Partitioned Outsourced Data
Data passes crossways the cloud by the methods of assorted way. It is fundamental to safeguard the data from unapproved users to access the information in any structure. The information refuge is guaranteed by changing a plain text into an incomprehensible configuration by encoding text utilizing cryptographic calculations and these techniques are espoused for scrambling the text to made sure about their data from aggressors to guarantee data protection. Deoxyribo Nucleic Acid (DNA) is an encryption method utilized to provide security to the distributed computing data. In this paper Codon Modulo Cryptography-based Algorithm for vertically partitioned cloud data is applied to provide security for the transactional data. Affiliation Rule Mining and Frequent Itemset strategies are applied to aggregate the Association Rules among the Frequent Items in a scrambled exchange of vertically partitioned information base. The exhibition of Rule Mining calculations such as Apriori, FP-Growth and Eclat with the proposed Codon Modulo algorithm is contrasted with the conventional Homomorphic Encryption. The result exhibits that the proposed algorithm outperforms the Homomorphic Encryption in performance with a high-security level.
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