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Extracting Snow Cover in Mountain Areas Based on SAR and Optical Data

IEEE Geosci. Remote Sensing Lett.(2015)

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摘要
Snow cover in cold and arid regions is a key factor controlling regional energy balances, hydrological cycle, and water utilization. Interferometric synthetic aperture radar (InSAR) technology offers the ability to monitor snow cover in all weather. In this letter, a support vector machine (SVM) method for extracting snow cover based on SAR and optical data in rugged mountain terrain is introduced. In this method, RadarSat-2 InSAR interferometric coherence images are analyzed, adopting snow-covered and snow-free areas obtained from GF-1 satellite observations as the “ground truth.” The analysis results indicate that the coherence in copolarizations is clearly correlated with the underlying surface type and local incidence angle. These two factors, combined with training samples from GF-1 wide field viewer data, were used to build an SVM to classify coherence images in HH polarization. The classification results demonstrate that snow cover extraction using this method can achieve mean accuracies of 83.8% and 77.5% in areas with low and high vegetation coverage, respectively. These accuracies are significantly higher than those achieved by the typical thresholding algorithm (72.7% and 69.2%, respectively).
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关键词
snow,interferometric coherence,snow cover extraction,synthetic aperture radar,svm method,coherence images,snow-covered areas,optical data,insar technology,radarsat-2 insar interferometric coherence images,sar data,multisensor,regional energy balances,hydrological techniques,gf-1 satellite observations,remote sensing by radar,feature extraction,support vector machine,geophysical image processing,thresholding algorithm,interferometric synthetic aperture radar,snow-free areas,hydrological cycle,snow cover,mountain areas,hh polarization,support vector machines,optical interferometry,coherence,accuracy,remote sensing
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