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Region-based automatic building and forest change detection on Cartosat-1 stereo imagery

机译:Cartosat-1立体影像上基于区域的自动建筑物和森林变化检测

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摘要

In this paper a novel region-based method is proposed for change detection using space borne panchromatic Cartosat-1 stereo imagery. In the first step, Digital Surface Models (DSMs) from two dates are generated by semi-global matching. The geometric lateral resolution of the DSMs is 5 m × 5 m and the height accuracy is in the range of approximately 3 m (RMSE). In the second step, mean-shift segmentation is applied on the orthorectified images of two dates to obtain initial regions. A region intersection following a merging strategy is proposed to get minimum change regions and multi-level change vectors are extracted for these regions. Finally change detection is achieved by combining these features with weighted change vector analysis. The result evaluations demonstrate that the applied DSM generation method is well suited for Cartosat-1 imagery, and the extracted height values can largely improve the change detection accuracy, moreover it is shown that the proposed change detection method can be used robustly for both forest and industrial areas.
机译:本文提出了一种新的基于区域的方法,用于使用星载全色Cartosat-1立体影像进行变化检测。第一步,通过半全局匹配来生成两个日期的数字表面模型(DSM)。 DSM的几何横向分辨率为5 m×5 m,高度精度约为3 m(RMSE)。在第二步中,将均值漂移分割应用于两个日期的正射影像上以获得初始区域。提出了遵循合并策略的区域相交以获得最小变化区域,并为这些区域提取了多级变化向量。最后,通过将这些特征与加权变化向量分析相结合,实现变化检测。结果评估表明,所应用的DSM生成方法非常适合Cartosat-1图像,并且所提取的高度值可以极大地提高变化检测的准确性,并且表明所提出的变化检测方法可以在森林和森林中均得到稳健使用。工业领域。

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