首页> 外文会议>IEEE International Geoscience and Remote Sensing Symposium >A PERCEPTION-INSPIRED BUILDING INDEX FOR AUTOMATIC BUILT-UP AREA DETECTION IN HIGH-RESOLUTION SATELLITE IMAGES
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A PERCEPTION-INSPIRED BUILDING INDEX FOR AUTOMATIC BUILT-UP AREA DETECTION IN HIGH-RESOLUTION SATELLITE IMAGES

机译:高分辨率卫星图像中自动建筑区域检测的感知鼓励建筑指标

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This paper addresses the problem of automatic extraction of built-up areas from high-resolution remote sensing images. We propose a new building presence index from the point view of perception. We argue that built-up areas usually result in significant corners and junctions in high-resolution satellite images, due to the man-made structures and occlusion, and thus can be measured by the geometrical structures they contained. More precisely, we first detect corners and junctions by relying on a perception-inspired corner detector, called an a-contrario junction detector. Each detected corner is associated with a perceptual significance, which measures the structural saliency of the corner in the image and is independent of the contrast and scale. All these detected corners together with their significance are then used to compute the building index. The proposed approach is evaluated on a high-resolution satellite image set, including 15 big images from GeoEye-1, QuickBird and IKONOS. The results demonstrated that our method achieves the state-of-the-art results and can be used in practical applications.
机译:本文解决了高分辨率遥感图像自动提取内置区域的问题。我们提出了一种新的建筑物存在指数,从感知的角度看。我们认为,由于人造的结构和闭塞,建筑区域通常导致高分辨率卫星图像中的显着角和连接,因此可以通过它们所含的几何结构来测量。更确切地说,我们首先通过依靠感知鼓励的角探测器来检测角落和连接点,称为A-Shortario结检测器。每个检测到的拐角与感知意义相关联,这可以测量图像中角的结构显着性,并且与对比度和比例无关。然后,所有这些检测到的角落都与其意义一起使用来计算建筑物指数。在高分辨率卫星图像集中评估所提出的方法,包括来自Geoeye-1,Quickbird和Ikonos的15个大图像。结果表明,我们的方法达到了最先进的结果,可用于实际应用。

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