A Data Obfuscation Method Using Ant-Lion-Rider Optimization for Privacy Preservation in the Cloud

Nagaraju Pamarthi, N. N. Rao
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Abstract

In this paper, a obfuscation-based technique namely, AROA based BMCG method is developed for secure data transmission in cloud. Initially, the input data with the mixed attributes is provided to the privacy preservation process directly, where the data matrix and bilinear map coefficient generation co-efficient is multiplied through Hilbert space-based tensor product. Here, bilinear map co-efficient is the new co-efficient proposed to multiply with original data matrix and the OB-MECC Encryption is utilized in the privacy preservation phase to maintain the security of the data. The derivation of bilinear map co-efficient is used to handle both the utility and the sensitive information. The new algorithm called, AROA is developed by integrating the ALO with ROA. The performance and the comparative analysis of the proposed AROA based BMCG method is done using the metrics, such as accuracy and information loss. The proposed AROA based BMCG method obtained a maximal accuracy of 94% and minimal information loss of 6% respectively.
一种基于蚁狮骑士优化的云环境下隐私保护数据混淆方法
本文提出了一种基于模糊的云数据安全传输技术,即基于AROA的BMCG方法。首先,将混合属性的输入数据直接提供给隐私保护处理,通过Hilbert空间张量积将数据矩阵与双线性映射系数生成系数相乘。本文提出了双线性映射协效率与原始数据矩阵相乘的新协效率,并在隐私保护阶段采用OB-MECC加密来保持数据的安全性。利用双线性映射系数的推导来处理实用信息和敏感信息。将蚁群算法与蚁群算法相结合,提出了新的蚁群算法AROA。利用精度和信息丢失等指标对所提出的基于AROA的BMCG方法进行了性能对比分析。所提出的基于AROA的BMCG方法的最大准确率为94%,最小信息损失为6%。
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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