ADGAN: A Scalable GAN-based Architecture for Image Anomaly Detection

Haoqing Cheng, Heng Liu, Fei Gao, Zhuo Chen

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

11 Citations (Scopus)

Abstract

With deep learning booming, related technologies have been applied in various fields. However, it remains an open question in terms of how to perform well on anomaly detection of images with diverse content and complexity. To address such problem, we propose ADGAN (Anomaly Detection Generative Adversarial Network), a scalable encoder-decoder-encoder architecture for image anomaly detection. Through extracting and utilizing multi-scale features of normal samples, we obtain fine-grained reconstructed images of normal class. Combined with adversarial training, the proposed model learns the distribution of normality thus large reconstruction errors occur when it processes anomalous samples during inference. We verify the effectiveness of ADGAN on two benchmark datasets: CIFAR-10 and CIFAR-100. The experimental results demonstrate that our method outperforms current anomaly detection work. We improve the top performing baseline AUCs by 9% and 6% on the CIFAR-10 dataset and the CIFAR-100 dataset respectively.

Original languageEnglish
Title of host publicationProceedings of 2020 IEEE 4th Information Technology, Networking, Electronic and Automation Control Conference, ITNEC 2020
EditorsBing Xu, Kefen Mou
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages987-993
Number of pages7
ISBN (Electronic)9781728143903
DOIs
Publication statusPublished - Jun 2020
Event4th IEEE Information Technology, Networking, Electronic and Automation Control Conference, ITNEC 2020 - Chongqing, China
Duration: 12 Jun 202014 Jun 2020

Publication series

NameProceedings of 2020 IEEE 4th Information Technology, Networking, Electronic and Automation Control Conference, ITNEC 2020

Conference

Conference4th IEEE Information Technology, Networking, Electronic and Automation Control Conference, ITNEC 2020
Country/TerritoryChina
CityChongqing
Period12/06/2014/06/20

Keywords

  • adversarial training
  • anomaly detection
  • generative adversarial network
  • reconstruction

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