Unsupervised polarimetric SAR urban area classification based on model-based decomposition with cross scattering

被引:72
作者
Xiang, Deliang [1 ,2 ]
Tang, Tao [2 ]
Ban, Yifang [1 ]
Su, Yi [2 ]
Kuang, Gangyao [2 ]
机构
[1] KTH Royal Inst Technol, Div Geoinformat, S-10044 Stockholm, Sweden
[2] Natl Univ Def Technol, Coll Elect Sci & Engn, Changsha 410073, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
Cross scattering matrix; K-means classifier; Urban area classification; Model-based decomposition; Polarimetric SAR (PoISAR); EXTRACTION; COMPONENT; IMAGES;
D O I
10.1016/j.isprsjprs.2016.03.009
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Since it has been validated that cross-polarized scattering (HV) is caused not only by vegetation but also by rotated dihedrals, in this study, we use rotated dihedral corner reflectors to form a cross scattering matrix and propose an extended four-component model-based decomposition method for PoISAR data over urban areas. Unlike other urban area decomposition techniques which need to discriminate the urban and natural areas before decomposition, this proposed method is applied on PoISAR image directly. The building orientation angle is considered in this scattering matrix, making it flexible and adaptive in the decomposition. Therefore, we can separate cross scattering of urban areas from the overall HV component. Further, the cross and helix scattering components are also compared. Then, using these decomposed scattering powers, the buildings and natural areas can be easily discriminated from each other using a simple unsupervised K-means classifier. Moreover, buildings aligned and not aligned along the radar flight direction can be also distinguished clearly. Spaceborne RADARSAT-2 and airborne AIRSAR full polarimetric SAR data are used to validate the performance of our proposed method. The cross scattering power of oriented buildings is generated, leading to a better decomposition result for urban areas with respect to other state-of-the-art urban decomposition techniques. The decomposed scattering powers significantly improve the classification accuracy for urban areas. (C) 2016 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:86 / 100
页数:15
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