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Using Combination of Statistical Models and Multilevel Structural Information for Detecting Urban Areas From a Single Gray-Level Image

机译:使用统计模型和多层次结构信息的组合从单个灰度图像中检测城市区域

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摘要

With the complex building composition and imaging condition, urban areas show versatile characteristics in remote sensing images. In the literature of land-cover analysis, many algorithms utilize the features with structural information to characterize urban areas. Typically, these are more successful on some types of imagery than others, since they usually use only one kind or a few kinds of structural information. On the other hand, since levels of development in neighboring areas are not statistically independent, the multiple features (encoding the multilevel structural information) of each site in urban area depend on that of neighboring sites. In this paper, a new-come discriminative model, i.e., conditional random field (CRF), is introduced to learn the dependencies and fuse the multilevel structural information to obtain the essential detection. To meet the higher needs of some users, we introduce a two-component-based Markov random field model and show how to integrate it tightly with CRF model to refine the results from essential detection. Experiments on a wide range of images show that our algorithms are competitive with recent results in urban area detection.
机译:由于复杂的建筑组成和成像条件,城市地区在遥感图像中显示出多方面的特征。在土地覆盖分析的文献中,许多算法利用具有结构信息的特征来表征城市区域。通常,由于它们通常仅使用一种或几种结构信息,因此它们在某些类型的图像上比其他类型的图像更为成功。另一方面,由于相邻区域的开发水平在统计上不是独立的,因此市区中每个站点的多个特征(对多层结构信息进行编码)取决于相邻站点的特征。本文介绍了一种新的判别模型,即条件随机场(CRF),以学习依赖关系并融合多级结构信息以获得必要的检测能力。为了满足某些用户的更高需求,我们引入了一个基于两成分的马尔可夫随机场模型,并展示了如何将其与CRF模型紧密集成以完善必要检测的结果。在各种图像上进行的实验表明,我们的算法与市区检测的最新结果相比具有竞争优势。

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