首页> 外文会议>Remotely Sensed Data and Information: Geoinformatics 2006; Proceedings of SPIE-The International Society for Optical Engineering; vol.6419 >Semiautomatic Extraction of Building Information and Variation Detection from High Resolution Remote Sensing Images
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Semiautomatic Extraction of Building Information and Variation Detection from High Resolution Remote Sensing Images

机译:半自动提取建筑物信息并从高分辨率遥感影像中检测变化

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This paper focuses on the problem of semiautomatic extraction of building information from high-resolution satellite images covering urban areas. This information includes buildings height, 2-D structure, and variation detection. An increasing number of applications require accurate and up-to-date cartographic and 3-D data. We introduce a set of accurate and automatic algorithms based on high-resolution remote sensing imagery such as Quickbird. Our method exploits the relationship between buildings height and their shadow in satellite images. Firstly we use our multiple-restriction method to extract the shadow information. Then we can adopt their relationship to compute building height information. In the process of building 2-D information extraction we introduce a new method about morphology used to do edge detection. After that we utilize the methods including image processing, image analyzing, and pattern recognition to detect building 2-D structure. Based on the statistical skewness of image we introduce the conception of variation coefficient. Using this algorithm we can make sure the geographic position of variation detection easily and quickly. Our method involves thresholds, most of them tuned with respect to practical situation and the physical characteristics of the image. Results are shown and discussed on different images.
机译:本文关注于从覆盖城市区域的高分辨率卫星图像中半自动提取建筑信息的问题。该信息包括建筑物高度,二维结构和变化检测。越来越多的应用程序需要准确和最新的制图和3D数据。我们介绍了一组基于高分辨率遥感影像(如Quickbird)的准确而自动的算法。我们的方法利用了卫星图像中建筑物高度与其阴影之间的关系。首先,我们使用多重限制方法提取阴影信息。然后,我们可以采用它们的关系来计算建筑物高度信息。在建立二维信息提取的过程中,我们介绍了一种用于形态学检测的新方法。之后,我们利用包括图像处理,图像分析和模式识别在内的方法来检测建筑物的二维结构。基于图像的统计偏度,我们介绍了变异系数的概念。使用该算法,我们可以轻松,快速地确定变化检测的地理位置。我们的方法涉及阈值,大多数阈值是根据实际情况和图像的物理特性进行调整的。结果在不同的图像上显示和讨论。

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