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Updating of Land Cover Maps and Change Analysis Using GlobeLand30 Product: A Case Study in Shanghai Metropolitan Area, China
by
Xu, Xiong
, Xie, Huan
, Pan, Haiyan
, Li, Binbin
, Tong, Xiaohua
, Jin, Yanmin
, Luo, Xin
in
accuracy
/ area
/ Case studies
/ Change detection
/ China
/ Classification
/ Cultivated lands
/ Datasets
/ detection
/ Ecosystem management
/ ecosystems
/ extended change vector analysis
/ GlobeLand30
/ Image analysis
/ Image classification
/ Image processing
/ Land cover
/ Learning
/ Mapping
/ Methods
/ Metropolitan areas
/ monitoring
/ Natural resource management
/ Natural resources
/ Object recognition
/ object-based method
/ Remote sensing
/ Resource management
/ Support vector machines
/ surfaces
/ Transfer learning
/ Uncertainty analysis
/ Vector analysis
/ Wetlands
2020
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Updating of Land Cover Maps and Change Analysis Using GlobeLand30 Product: A Case Study in Shanghai Metropolitan Area, China
by
Xu, Xiong
, Xie, Huan
, Pan, Haiyan
, Li, Binbin
, Tong, Xiaohua
, Jin, Yanmin
, Luo, Xin
in
accuracy
/ area
/ Case studies
/ Change detection
/ China
/ Classification
/ Cultivated lands
/ Datasets
/ detection
/ Ecosystem management
/ ecosystems
/ extended change vector analysis
/ GlobeLand30
/ Image analysis
/ Image classification
/ Image processing
/ Land cover
/ Learning
/ Mapping
/ Methods
/ Metropolitan areas
/ monitoring
/ Natural resource management
/ Natural resources
/ Object recognition
/ object-based method
/ Remote sensing
/ Resource management
/ Support vector machines
/ surfaces
/ Transfer learning
/ Uncertainty analysis
/ Vector analysis
/ Wetlands
2020
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Do you wish to request the book?
Updating of Land Cover Maps and Change Analysis Using GlobeLand30 Product: A Case Study in Shanghai Metropolitan Area, China
by
Xu, Xiong
, Xie, Huan
, Pan, Haiyan
, Li, Binbin
, Tong, Xiaohua
, Jin, Yanmin
, Luo, Xin
in
accuracy
/ area
/ Case studies
/ Change detection
/ China
/ Classification
/ Cultivated lands
/ Datasets
/ detection
/ Ecosystem management
/ ecosystems
/ extended change vector analysis
/ GlobeLand30
/ Image analysis
/ Image classification
/ Image processing
/ Land cover
/ Learning
/ Mapping
/ Methods
/ Metropolitan areas
/ monitoring
/ Natural resource management
/ Natural resources
/ Object recognition
/ object-based method
/ Remote sensing
/ Resource management
/ Support vector machines
/ surfaces
/ Transfer learning
/ Uncertainty analysis
/ Vector analysis
/ Wetlands
2020
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Updating of Land Cover Maps and Change Analysis Using GlobeLand30 Product: A Case Study in Shanghai Metropolitan Area, China
Journal Article
Updating of Land Cover Maps and Change Analysis Using GlobeLand30 Product: A Case Study in Shanghai Metropolitan Area, China
2020
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Overview
Accurate land cover mapping and change analysis is essential for natural resource management and ecosystem monitoring. GlobeLand30 is a global land cover product from China with 30 m resolution that provides reliable data for many international scientific programs. Few studies have focused on systematically implementing this global land cover product in regional studies. Therefore, this paper presents an object-based extended change vector analysis (ECVA_OB) and transfer learning method to update the reginal land cover map using GlobeLand30 product. The method is designed to highlight small and subtle changes through the concept of uncertain area analysis. Updating is carried out by classifying changed objects using a change-detection-based transfer learning method. Land cover changes are analyzed and the factors affecting updating results are explored. The method was tested with data from Shanghai, China, a city that has experienced significant changes in the past decade. The experimental results show that: (1) the change detection and classification accuracy of the proposed method are 83.30% and 78.77%, respectively, which are significantly better than the values obtained for the multithreshold change vector analysis (MCVA) and the multithreshold change vector analysis and support vector machine (MCVA + SVM) methods; (2) the updated results agree well with GlobeLand30 2010, especially for cultivated land and artificial surfaces, indicating the effectiveness of the proposed method; (3) the most significant changes over the past decade in Shanghai were from cultivated land to artificial surfaces, and the total area containing artificial surfaces in Shanghai increased by about 55% from 2000 to 2011. The factors affecting the updating results are also discussed, which be attributed to the classification accuracy of the base image, extended change vector analysis, and object-based image analysis.
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