首页> 外文会议>International Conference on Space Information Technology; 20071115-17; Wuhan(CN) >A Knowledge-Based Segmentation Technology for Remote Sensing Optical Images
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A Knowledge-Based Segmentation Technology for Remote Sensing Optical Images

机译:基于知识的遥感光学图像分割技术

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In this paper, we propose a whole scheme of remote sensing image segmentation process, from fast detection to accurate edge location. As we know, more structure information is acquired in high resolution remote sensing images. However, traditional image processing algorithms will produce meaningless results without priori knowledge. We aim at solving the problem in which regions may be distinguishable in intensity but belong to the same target by the ground truth. This is done by multi-threshold segmentation. What's more, In order to get a more regular shape, we use random field model to introduce .spatial constraint at a small scale, and active contour model to smooth the whole edge at a larger scale. Simulation results demonstrate the effectiveness of our method in extracting ships from the satellite images. This paper also introduces the potential of integrating the image segmentation and subsequent image analysis tasks.
机译:本文提出了一种从快速检测到精确边缘定位的遥感图像分割过程的整体方案。众所周知,在高分辨率遥感影像中会获取更多的结构信息。但是,传统的图像处理算法将在没有先验知识的情况下产生无意义的结果。我们旨在解决这样一个问题,即区域可能在强度上是可区分的,但根据地面事实却属于同一目标。这是通过多阈值分割完成的。此外,为了获得更规则的形状,我们使用随机场模型以小比例尺引入.spatial约束,并使用主动轮廓模型以较大的比例尺平滑整个边缘。仿真结果证明了我们的方法从卫星图像中提取舰船的有效性。本文还介绍了整合图像分割和后续图像分析任务的潜力。

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