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HYPERSPECTRAL ANOMALY DETECTION BASED ON ADAPTIVE WEIGHTED SPARSE DICTIONARY LEARNING

  • Northwestern Polytechnical University Xian

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

4 Scopus citations

Abstract

The background estimation and modeling are the core of hyperspectral anomaly detection. However, the complex hyperspectral image does not conform to the assumption of multivariate normal distribution in most methods. At the same time, the existence of unknown abnormal targets in the background will also affect the modeling of the background. To solve the above problems, a hyperspectral anomaly detection method based on adaptive weighted sparse dictionary learning (AWSDLD) is proposed in this paper. Firstly, the dictionary learning framework based on adaptive weights is used to learn more representative background dictionaries without considering the background distribution. Secondly, due to the capped norm property, the proposed method can effectively suppress the influence of abnormal targets on background modeling. Finally, the abnormal targets are more significant and easier to be detected in the residual image between the reconstructed image and the original image. The experimental results on three real datasets show the effectiveness of the proposed method.

Original languageEnglish
Title of host publicationIGARSS 2021 - 2021 IEEE International Geoscience and Remote Sensing Symposium, Proceedings
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages4176-4179
Number of pages4
ISBN (Electronic)9781665403696
DOIs
StatePublished - 2021
Event2021 IEEE International Geoscience and Remote Sensing Symposium, IGARSS 2021 - Online, Virtual, Belgium
Duration: 12 Jul 202116 Jul 2021

Publication series

NameInternational Geoscience and Remote Sensing Symposium (IGARSS)
ISSN (Print)2153-6996
ISSN (Electronic)2153-7003

Conference

Conference2021 IEEE International Geoscience and Remote Sensing Symposium, IGARSS 2021
Country/TerritoryBelgium
CityOnline, Virtual
Period12/07/2116/07/21

Keywords

  • anomaly detection
  • dictionary learning
  • hyperspectral
  • Remote sensing
  • sparse

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