首页> 外文会议>IEEE International Geoscience and Remote Sensing Symposium >BUILDING DETECTION IN HIGH RESOLUTION SATELLITE URBAN IMAGE USING SEGMENTATION, CORNER DETECTION COMBINED WITH ADAPTIVE WINDOWED HOUGH TRANSFORM
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BUILDING DETECTION IN HIGH RESOLUTION SATELLITE URBAN IMAGE USING SEGMENTATION, CORNER DETECTION COMBINED WITH ADAPTIVE WINDOWED HOUGH TRANSFORM

机译:使用分割的高分辨率卫星城市形象在高分辨率卫星城市形象中进行建设检测,转角检测与自适应窗口霍夫变换相结合

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摘要

The building detection is one of the most challenging issues in remote sensing image processing. In this paper, a novel approach for building detection using corner detection, segmentation and adaptive windowed Hough Transform is presented. In the first, the Mean shift segmentation is used to split the image into a numbers of classes. In the second step, the scale invariant feature transform (SIFT) is used to extract the corners in the original image .In the third step the corners are used as one of the evidences to verify the presence of buildings. In the Mean shift segmentation result image, around the corners detected by SIFT algorithm, the approximate boundary of the buildings is extracted. With the help of approximate boundary of the buildings, the size of the building can be estimate. Finally, in order to extract the precise building roof boundary, the adaptive windowed Hough Transform is used to extract the straight line of the building boundary. Preliminary experimental results indicate that the proposed method produced promising results.
机译:建筑物检测是遥感图像处理中最具挑战性的问题之一。本文介绍了使用拐角检测,分段和自适应窗口霍夫变换建筑检测的新方法。在第一,平均移位分割用于将图像分成多个类别。在第二步中,规模不变特征变换(SIFT)用于提取原始图像中的角落。在第三步中,角落被用作验证建筑物的存在的证据之一。在平均移位分割结果图像中,围绕由SIFT算法检测到的拐角,提取建筑物的近似边界。借助建筑物的近似边界,建筑物的大小可以是估计的。最后,为了提取精确的建筑屋顶边界,使用自适应窗口霍夫变换来提取建筑边界的直线。初步实验结果表明,该方法产生了有希望的结果。

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