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首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >TRANSFORMATION BASED ALGORITHMS FOR CHANGE DETECTION IN FULL POLARIMETRIC REMOTE SENSING IMAGES
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TRANSFORMATION BASED ALGORITHMS FOR CHANGE DETECTION IN FULL POLARIMETRIC REMOTE SENSING IMAGES

机译:完全偏振遥感图像中改变检测的转换算法

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摘要

Thanks to the recent advances in the development of polarimetric synthetic aperture radar (SAR) sensors, this remote sensing field attracts many applications. Among the different applications of these data, change detection is one of the most important applications. PolSAR images, due to interactions between electromagnetic waves and the target, could be used to study changes in the Earth's surface. This paper is a type of transformation-based method for polarimetric change detection (CD) purpose. For this purpose, we use full polarimetry imaging radar and extracted 138 features based on decomposition. The CD methods are the principal component analysis (PCA), the Multivariate Alteration Detection (MAD), the Iteratively Reweighted Multivariate Alteration Detection (IR-MAD), the Covariance Equalization (CE), and the Cross-Covariance (CRC). Assessment of the incorporated methods performed using most common criteria as quantity and quality assessment, such as overall accuracy (OA), kappa coefficient, and as visual analysis. The results of the experiments show that CC has better performance compared with other algorithms.
机译:由于近期开发Polariemetric合成孔径雷达(SAR)传感器的进展,这座遥感领域吸引了许多应用。在这些数据的不同应用中,变更检测是最重要的应用之一。由于电磁波和目标之间的相互作用,Polsar图像可用于研究地球表面的变化。本文是一种基于转换的偏振变化检测(CD)目的方法。为此目的,我们使用完整的偏光率成像雷达并基于分解提取138个特征。 CD方法是主要成分分析(PCA),多变量改变检测(MAD),迭代重复多变量改变检测(IR-MAD),协方差均衡(CE)和交叉协方差(CRC)。评估使用大多数常见标准作为数量和质量评估进行的掺入方法,例如整体精度(OA),Kappa系数和视觉分析。实验结果表明,与其他算法相比,CC具有更好的性能。

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