A Novel Method to Solve Real Time Security Issues in Software Industry Using Advanced Cryptographic Techniques

Sci. Program. Pub Date : 2021-12-28 DOI:10.1155/2021/3611182
B. Gobinathan, M. A. Mukunthan, S. Surendran, K. Somasundaram, Syed Abdul Moeed, P. Niranjan, V. Gouthami, G. Ashmitha, Gouse Baig Mohammad, V. Shanmuganathan, Yuvaraj Natarajan, K. Srihari, Venkatesa Prabhu Sundramurthy
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引用次数: 41

Abstract

In recent times, the utility and privacy are trade-off factors with the performance of one factor tends to sacrifice the other. Therefore, the dataset cannot be published without privacy. It is henceforth crucial to maintain an equilibrium between the utility and privacy of data. In this paper, a novel technique on trade-off between the utility and privacy is developed, where the former is developed with a metaheuristic algorithm and the latter is developed using a cryptographic model. The utility is carried out with the process of clustering, and the privacy model encrypts and decrypts the model. At first, the input datasets are clustered, and after clustering, the privacy of data is maintained. The simulation is conducted on the manufacturing datasets over various existing models. The results show that the proposed model shows improved clustering accuracy and data privacy than the existing models. The evaluation with the proposed model shows a trade-off privacy preservation and utility clustering in smart manufacturing datasets.
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一种利用高级加密技术解决软件行业实时安全问题的新方法
近年来,效用和隐私是一种权衡因素,其中一个因素的表现往往会牺牲另一个因素。因此,没有隐私就不能发布数据集。因此,保持数据的实用性和隐私性之间的平衡至关重要。本文提出了一种实用与隐私权衡的新技术,其中前者采用元启发式算法,后者采用密码学模型。该实用程序通过聚类过程实现,隐私模型对模型进行加密和解密。首先对输入数据集进行聚类,聚类后保持数据的隐私性。在各种现有模型的制造数据集上进行了仿真。结果表明,与现有模型相比,该模型具有更高的聚类精度和数据隐私性。该模型在智能制造数据集中体现了隐私保护和效用聚类的权衡。
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