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REMOTE SENSING FOR LAND & RESOURCES    2008, Vol. 20 Issue (4) : 14-17     DOI: 10.6046/gtzyyg.2008.04.04
Technology and Methodology |
A STUDY OF THE OPTIMAL SCALE TEXTURE ANALYSIS FOR REMOTE SENSING IMAGE CLASSIFICATION
HUANG Yan, ZHANG Chao, SU Wei, YUE An-zhi
College of Information and Electrical Engineering, China Agricultural University, Beijing 100083, China
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Abstract  

Texture analysis has become an important means for improving the accuracy of remote sensing image

classification. As the texture feature is closely related to image scale, the determination of a scale for texture

analysis applied in remote sensing image classification is very important and corresponds to the choice of an

appropriate size of texture window for gray co-occurrence matrix texture analysis. The authors studied the spatial

relationship between the adjacent pixels in the remote sensing image, and selected the lag distance of the semi-

variogram that was determined when the value of the semi-variogram tended to be constant as the co-occurrence

window size. Under the restraint of the Maximum Likelihood supervised classification results, the co-occurrence

features were computed with a timely changeable co-occurrence window size according to the semi-variogram

analysis. This paper introduced a method of reasonable scale texture analysis for remote sensing image

classification and had an image taken in Changping District, Beijing as an example. The texture feature was

extracted from SPOT5 remote sensing data in the Titan Image secondary development environment and involved in

classification. A comparison of the results using the method proposed in this paper shows that the classification

accuracy has been improved effectively.

Keywords Prospecting model method      Provenance field      Ore-forming node      Prospecting information of remote sensing     
Issue Date: 23 June 2009
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ZHAO Fu-yue
Cite this article:   
ZHAO Fu-yue. A STUDY OF THE OPTIMAL SCALE TEXTURE ANALYSIS FOR REMOTE SENSING IMAGE CLASSIFICATION[J]. REMOTE SENSING FOR LAND & RESOURCES, 2008, 20(4): 14-17.
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https://www.gtzyyg.com/EN/10.6046/gtzyyg.2008.04.04     OR     https://www.gtzyyg.com/EN/Y2008/V20/I4/14
[1] ZHAO Fu-yue . PROSPECTING MODEL METHOD OF PROVENANCE FIELD-ORE-FORMING NODE-REMOTE SENSING ANOMALIES RELATED TO MINERALIZATION[J]. REMOTE SENSING FOR LAND & RESOURCES, 2000, 12(4): 28-33,49.
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