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Market behavior-oriented deep learning-based secure data analysis in smart cities

delete2023-05-01
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PRE
AI
吕秋颍 (Qiuying Lv) *
N
Nannan Yang
A
Adam Słowik
J
Jianhui Lv
A
Amin Yousefpour
DOI:10.1016/j.compeleceng.2023.108722delete
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Abstract

Abstract

En 中文
The construction of Smart Cities is inseparable from the healthy operation of markets. Reasonable data analysis can provide a crucial foundation for the development of market behavior by considering the enormous amount of data generated by a market economy. To this end, we propose enhanced cluster generative adversarial networks (eClusterGAN) to achieve latent space clustering. However, data storage security is crucial. Moreover, we suggest a GAN-based network intrusion detection system (GAN-NIDS) that uses adversarial learning to assist the generator in learning the spatial distribution of normal network flows. The simulation results showed that the proposed eClusterGAN and GAN-NIDS outperformed the benchmarks in terms of clustering accuracy, running time, precision, recall, and F1, which can support researchers in studying economic data trends. The construction of Smart Cities can effectively ensure healthy market development by discovering and disseminating the potential value of market economic data.
Keywords:
Smart cities
Market economy
Secure data analysis
Clustering
Deep learning

Journal

C
Computers and Electrical Engineering
IF:
4.9
Papers:
6.7K
Citations:
1.3W

Organization

Koszalan University of Technology cover
Koszalan University of Technology
Scholars:
504
Papers: 612
Citations: 362
F
Fuyang Normal University
Scholars:
2.0K
Papers: 1.1K
Citations: 1.1K
University of California System cover
University of California System
Scholars:
37.5W
Papers: 33.7W
Citations: 6.6K
U
university of california irvine
Scholars:
2.3W
Papers: 1.7W
Citations: 55
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