DocumentCode :
2021188
Title :
Extraction of wetland combing with Radarsat and HJ data of Yellow River Delta
Author :
Liang, Chen ; Xuegong, Liu ; Houjun, He ; Lin, Han
Author_Institution :
Inf. Center of Yellow River Conservancy Comm., Zhengzhou, China
fYear :
2010
fDate :
23-25 Nov. 2010
Firstpage :
1614
Lastpage :
1618
Abstract :
Wetland types of Yellow River Delta are various and serious phenomena of ´same object with different spectrum´ and ´different object with same spectrum´ is one of the reasons caused low classification accuracy. Combination with multi source images is an efficient method to mitigate this influence. In the paper, principal component transform was carried out to Radarsat four polarization data and the first principal component were fused with HJ images based on HIS, Brovey, PC and Wavelet transform. A maximum likelihood classifier was applied to extract wetland information of Yellow River Delta. The experiment results demonstrated that HIS transform performed well than the others and outstood the wetland information. The results also showed that the classification accuracies of HIS merged images and the stacked images were highest, through combining two different source data to make good use of information.
Keywords :
feature extraction; geophysical image processing; geophysical techniques; image classification; principal component analysis; remote sensing by radar; wavelet transforms; Brovey transform; HIS transform; HJ data; Radarsat; Yellow River Delta; image classification; maximum likelihood classifier; multisource images; principal component transform; stacked images; wavelet transform; wetland combing; wetland types; Accuracy; Entropy; Image fusion; Remote sensing; Rivers; Transforms; Vegetation mapping;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Audio Language and Image Processing (ICALIP), 2010 International Conference on
Conference_Location :
Shanghai
Print_ISBN :
978-1-4244-5856-1
Type :
conf
DOI :
10.1109/ICALIP.2010.5685019
Filename :
5685019
Link To Document :
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