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タイトルUnsupervised segmentation of polarimetric SAR data using the covariance matrix
著者(英)Chellappa, Rama; Rignot, Eric J. M.; Dubois, Pascale C.
著者所属(英)Jet Propulsion Lab., California Inst. of Tech.
発行日1992-07-01
言語eng
内容記述A method for unsupervised segmentation of polarimetric synthetic aperture radar (SAR) data into classes of homogeneous microwave polarimetric backscatter characteristics is presented. Classes of polarimetric backscatter are selected on the basis of a multidimensional fuzzy clustering of the logarithm of the parameters composing the polarimetric covariance matrix. The clustering procedure uses both polarimetric amplitude and phase information, is adapted to the presence of image speckle, and does not require an arbitrary weighting of the different polarimetric channels; it also provides a partitioning of each data sample used for clustering into multiple clusters. Given the classes of polarimetric backscatter, the entire image is classified using a maximum a posteriori polarimetric classifier. Four-look polarimetric SAR complex data of lava flows and of sea ice acquired by the NASA/JPL airborne polarimetric radar (AIRSAR) are segmented using this technique. The results are discussed and compared with those obtained using supervised techniques.
NASA分類COMMUNICATIONS AND RADAR
レポートNO93A14706
権利Copyright
URIhttps://repository.exst.jaxa.jp/dspace/handle/a-is/322234


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