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A Review on Generative Adversarial Networks:Algorithms,Theory,and Application - 2021

A Review On Generative Adversarial Networks:Algorithms,Theory,And Application

Research Area:  Machine Learning

Abstract:

Generative adversarial networks (GANs) have recently become a hot research topic; however, they have been studied since 2014, and a large number of algorithms have been proposed. However, few comprehensive studies exist explaining the connections among different GANs variants and how they have evolved. In this paper, we attempt to provide a review of the various GANs methods from the perspectives of algorithms, theory, and applications. First, the motivations, mathematical representations, and structures of most GANs algorithms are introduced in detail and we compare their commonalities and differences. Second, theoretical issues related to GANs are investigated. Finally, typical applications of GANs in image processing and computer vision, natural language processing, music, speech and audio, medical field, and data science are discussed.

Keywords:  

Author(s) Name:   Jie Gui; Zhenan Sun; Yonggang Wen; Dacheng Tao; Jieping Ye

Journal name:  IEEE Transactions on Knowledge and Data Engineering

Conferrence name:  

Publisher name:  IEEE

DOI:  10.1109/TKDE.2021.3130191

Volume Information:   Page(s): 1 - 1