Improved secure PCA and LDA algorithms for intelligent computing in IoT‐to‐cloud setting

Author:

Jiasen Liu1ORCID,An Wang Xu2,Guofeng Li1,Dan Yu1,Jindan Zhang3

Affiliation:

1. The Second Mobile Corps under Chinese Armed Police Force Guangzhou China

2. Key Laboratory for Network and Information Security of the PAP Engineering University of the PAP Xi'an Shaanxi Province China

3. School of Electronic Information, Xianyang Polytechnic Institute Xianyang China

Abstract

AbstractThe rapid development of new technologies such as artificial intelligence and big data analysis requires the simultaneous development of cloud computing technology. The application of IoT‐to‐cloud setting has been fully applied in various industry sectors, such as sensor‐cloud system which is composed of wireless sensor network and cloud computing technology. With the increasing amount and types of collected data, companies need to reduce the dimension of massive data in cloud servers for obtaining data analysis reports rapidly. Due to frequent cloud server data leaks, companies must adequately protect the privacy of some confidential data. To this end, we designed a dimension reduction method for ciphertext data in the sensor‐cloud system based on the CKKS encryption scheme, principal component analysis (PCA) and linear discriminant analysis (LDA) dimension reduction algorithm. As data cannot be directly calculated using traditional PCA and LDA algorithm after encryption, we add some interactive operations and iterative calculations to replace some steps in traditional algorithms. Finally, we select the classification dataset IRIS which is commonly used in machine learning, and screen out the best encryption and calculation parameters, and efficiently realize the dimension reduction method of ciphertext data through a large number of experiments.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shaanxi Province

Publisher

Wiley

Subject

Artificial Intelligence,Computational Mathematics

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