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Remotely sensed change detection using multiresolution analysis and motion estimation

机译:使用多分辨率分析和运动估计进行远程感测的变化检测

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Detection of changes in remotely sensed geographic images is required for a variety of applications including natural disasters. Change detection is an important process utilized for updating the geographic information system (GIS) data, monitoring natural resources and urban developments. It provides quantitative analysis of the spatial distribution of the area of interest. Different types of change detection techniques include: Multi-date visual composite (multitemporal composite), image differencing, post-classification, etc. In this work, we propose a change detection algorithm based on multiresolution analysis and motion estimation. We use multispectral satellite imagery and apply the dual tree complex wavelet transform to get images ensembles. We have also compared our proposed algorithm with some of the efficient methods reported in the literature. Experimental results are given using the IRS images of the Bam city before and after the earthquake.
机译:对于包括自然灾害的各种应用,需要检测远程感测地理图像的变化。 变更检测是用于更新地理信息系统(GIS)数据,监控自然资源和城市发展的重要过程。 它提供了对感兴趣领域的空间分布的定量分析。 不同类型的改变检测技术包括:多日期可视化复合(多型复合材料),图像差异,分类后等。在这项工作中,我们提出了一种基于多分辨率分析和运动估计的变化检测算法。 我们使用多光谱卫星图像,并应用双树复杂小波变换以获得图像集合。 我们还将我们的提出算法与文献中报告的一些有效方法进行了比较。 使用地震前后的BAM城市的IRS图像给出了实验结果。

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