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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >A new maximum-likelihood joint segmentation technique for multitemporal SAR and multiband optical images
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A new maximum-likelihood joint segmentation technique for multitemporal SAR and multiband optical images

机译:多时相SAR和多波段光学图像的最大似然联合分割新技术

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In this paper, we devise a new technique for the fusion of a sequence of multitemporal single-channel synthetic aperture radar (SAR) images of a given area with a single multiband optical image. Unlike for SAR, the availability of optical images is largely affected by atmospheric conditions, so that this is a case of practical interest. First, a statistical model for the joint distribution of SAR and optical data is provided. Then, a split-merge test based on this model is derived, and its performance is evaluated both analytically and using a Monte Carlo simulation. A new segmentation technique is introduced (OPT MUM), based on the test and on a region-growing scheme. The effectiveness of the proposed technique for the fusion of multitemporal SAR and multiband optical images is tested on synthetic and real images. Results show that the proposed scheme allows to both 1) discriminate characteristics that would be impossible to distinguish using only a single sensor and 2) increase the overall discrimination performance, even when each sensor has its own discrimination capability.
机译:在本文中,我们设计了一种将给定区域的多时相单通道合成孔径雷达(SAR)图像序列与单个多波段光学图像融合的新技术。与SAR不同,光学图像的可用性在很大程度上受大气条件的影响,因此这是一种实用的案例。首先,提供了SAR和光学数据联合分布的统计模型。然后,导出基于此模型的拆分合并测试,并通过分析和使用蒙特卡洛模拟评估其性能。基于测试和区域增长方案,引入了一种新的分割技术(OPT MUM)。在合成和真实图像上测试了所提出的技术对多时相SAR和多波段光学图像融合的有效性。结果表明,提出的方案允许以下两种情况:1)仅使用单个传感器就无法区分的特征; 2)即使每个传感器都有自己的识别能力,也可以提高总体识别性能。

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