A novel subpixel mapping approach based on spectral unmixing for hyperspectral images

Ting Wang, Yifan Zhang, Shaohui Mei

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

Abstract

Hyperspectal image classification in subpixel level is treated in this paper. A hybrid framework is proposed, in which two paralleled branches are integrated by decision fusion. In one branch, a subpixel level segmentation map is obtained by applying unsupervised clustering to the upsampled hyperspectral image. In the other branch, a subpixel level classification map is obtained using subpixel spatial attraction model. To improve abundance estimation accuracy, novel endmember selection and abundance estimation strategies are employed for spectral unmixing. Experimental results illustrate that, compared to some existing subpixel mapping approaches, the newly proposed one is capable of producing results with higher accuracy. The improvement in classification accuracy can be attributed to the usage of the novel endmemeber selection and abundance estimation strategies in spectral unmixing and the consideration of spatial contextual information in decision fusion.

Original languageEnglish
Title of host publication2017 International Symposium on Intelligent Signal Processing and Communication Systems, ISPACS 2017 - Proceedings
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages265-269
Number of pages5
ISBN (Electronic)9781538621592
DOIs
StatePublished - 2 Jul 2017
Event25th International Symposium on Intelligent Signal Processing and Communication Systems, ISPACS 2017 - Xiamen, China
Duration: 6 Nov 20179 Nov 2017

Publication series

Name2017 International Symposium on Intelligent Signal Processing and Communication Systems, ISPACS 2017 - Proceedings
Volume2018-January

Conference

Conference25th International Symposium on Intelligent Signal Processing and Communication Systems, ISPACS 2017
Country/TerritoryChina
CityXiamen
Period6/11/179/11/17

Keywords

  • Classification
  • Hyperspectral image
  • Spectral unmixing
  • Subpixel mapping

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