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Unsupervised Estimation of the Equivalent Number of Looks in PolSAR Image with High Heterogeneity

Permanent link
https://hdl.handle.net/10037/12441
DOI
https://doi.org/10.11999/JEIT170014
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Date
2017-03-01
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Author
Hu, Dingsheng; Qiu, Xiaolan; Anfinsen, Stian Normann; Lei, Bin
Abstract
Equivalent Number of Looks (ENL) is an important parameter in statistical modelling of multi-look Polarimetric SAR (PolSAR) data. In some automated applications of PolSAR images, it is necessary to estimate the ENL in an unsupervised way without any manual intervention. The existing unsupervised estimation of ENL can not obtain accurate estimates for the images with high heterogeneity. To address this issue, a novel unsupervised estimation method is proposed here. It combines the mixture elimination and clustering based on texture, which reduces the effect of two main heterogeneity factors, mixture and texture. The validity of this method is evaluated with simulated and real data of different complexity.
Description
Source at http://dx.doi.org/10.11999/JEIT170014 .
Publisher
Chinese Academy of Sciences, Institute of Electronics
Citation
Hu, D., Qiu, X., Anfinsen, S. N., Lei, B. (2017). Unsupervised Estimation of the Equivalent Number of Looks in PolSAR Image with High Heterogeneity. Dianzi Yu Xinxi Xuebao/Journal of Electronics and Information Technology. 39(10):2287-2293
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