The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands

The purpose of this study was to examine how different polarimetric parameters and an object-based approach influence the classification results of various land use/land cover types using fully polarimetric ALOS PALSAR data over coastal wetlands in Yancheng, China. To verify the efficiency of the pr...

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Main Authors: Yuanyuan Chen, Xiufeng He, Jing Wang, Ruya Xiao
Format: Article
Language:English
Published: MDPI AG 2014-12-01
Series:Remote Sensing
Subjects:
Online Access:http://www.mdpi.com/2072-4292/6/12/12575
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spelling doaj-83bb6ede24eb427285cde7cb9d433dd92020-11-25T00:50:24ZengMDPI AGRemote Sensing2072-42922014-12-01612125751259210.3390/rs61212575rs61212575The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal WetlandsYuanyuan Chen0Xiufeng He1Jing Wang2Ruya Xiao3Institute of Satellite Navigation and Spatial Information System, Hohai University, Nanjing 210098, ChinaInstitute of Satellite Navigation and Spatial Information System, Hohai University, Nanjing 210098, ChinaChina Land Surveying and Planning Institute, Beijing 100035, ChinaInstitute of Satellite Navigation and Spatial Information System, Hohai University, Nanjing 210098, ChinaThe purpose of this study was to examine how different polarimetric parameters and an object-based approach influence the classification results of various land use/land cover types using fully polarimetric ALOS PALSAR data over coastal wetlands in Yancheng, China. To verify the efficiency of the proposed method, five other classifications (the Wishart supervised classification, the proposed method without polarimetric parameters, the proposed method without an object-based analysis, the proposed method without textural and geometric information and the proposed method using the nearest-neighbor classifier) were applied for comparison. The results indicated that some polarimetric parameters, such as Shannon entropy, Krogager_Kd, Alpha, HAAlpha_T11, VanZyl3_Vol, Derd, Barnes2_T33, polarization fraction, Barnes1_T33, Neuman_delta_mod and entropy, greatly improved the classification results. The shape index was a useful feature in distinguishing fish ponds and rivers. The distance to the sea can be regarded as an important factor in reducing the confusion between herbaceous wetland vegetation and grasslands. Furthermore, the decision tree algorithm increased the overall accuracy by 6.8% compared with the nearest neighbor classifier. This research demonstrated that different polarimetric parameters and the object-based approach significantly improved the performance of land cover classification in coastal wetlands using ALOS PALSAR data.http://www.mdpi.com/2072-4292/6/12/12575wetlandsALOS PALSARpolarimetric decompositionobject-based approachdecision tree
collection DOAJ
language English
format Article
sources DOAJ
author Yuanyuan Chen
Xiufeng He
Jing Wang
Ruya Xiao
spellingShingle Yuanyuan Chen
Xiufeng He
Jing Wang
Ruya Xiao
The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
Remote Sensing
wetlands
ALOS PALSAR
polarimetric decomposition
object-based approach
decision tree
author_facet Yuanyuan Chen
Xiufeng He
Jing Wang
Ruya Xiao
author_sort Yuanyuan Chen
title The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
title_short The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
title_full The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
title_fullStr The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
title_full_unstemmed The Influence of Polarimetric Parameters and an Object-Based Approach on Land Cover Classification in Coastal Wetlands
title_sort influence of polarimetric parameters and an object-based approach on land cover classification in coastal wetlands
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2014-12-01
description The purpose of this study was to examine how different polarimetric parameters and an object-based approach influence the classification results of various land use/land cover types using fully polarimetric ALOS PALSAR data over coastal wetlands in Yancheng, China. To verify the efficiency of the proposed method, five other classifications (the Wishart supervised classification, the proposed method without polarimetric parameters, the proposed method without an object-based analysis, the proposed method without textural and geometric information and the proposed method using the nearest-neighbor classifier) were applied for comparison. The results indicated that some polarimetric parameters, such as Shannon entropy, Krogager_Kd, Alpha, HAAlpha_T11, VanZyl3_Vol, Derd, Barnes2_T33, polarization fraction, Barnes1_T33, Neuman_delta_mod and entropy, greatly improved the classification results. The shape index was a useful feature in distinguishing fish ponds and rivers. The distance to the sea can be regarded as an important factor in reducing the confusion between herbaceous wetland vegetation and grasslands. Furthermore, the decision tree algorithm increased the overall accuracy by 6.8% compared with the nearest neighbor classifier. This research demonstrated that different polarimetric parameters and the object-based approach significantly improved the performance of land cover classification in coastal wetlands using ALOS PALSAR data.
topic wetlands
ALOS PALSAR
polarimetric decomposition
object-based approach
decision tree
url http://www.mdpi.com/2072-4292/6/12/12575
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