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首页> 外文期刊>Journal of Applied Remote Sensing >Rotation and scale invariant shape context registration for remote sensing images with background variations
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Rotation and scale invariant shape context registration for remote sensing images with background variations

机译:具有背景变化的遥感图像的旋转和尺度不变形状上下文配准

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摘要

Multitemporal remote sensing images generally suffer from background variations, which significantly disrupt traditional region feature and descriptor abstracts, especially between pre and postdisasters, making registration by local features unreliable. Because shapes hold relatively stable information, a rotation and scale invariant shape context based on multiscale edge features is proposed. A multiscale morphological operator is adapted to detect edges of shapes, and an equivalent difference of Gaussian scale space is built to detect local scale invariant feature points along the detected edges. Then, a rotation invariant shape context with improved distance discrimination serves as a feature descriptor. For a distance shape context, a self-adaptive threshold (SAT) distance division coordinate system is proposed, which improves the discriminative property of the feature descriptor in mid-long pixel distances from the central point while maintaining it in shorter ones. To achieve rotation invariance, the magnitude of Fourier transform in one-dimension is applied to calculate angle shape context. Finally, the residual error is evaluated after obtaining thin-plate spline transformation between reference and sensed images. Experimental results demonstrate the robustness, efficiency, and accuracy of this automatic algorithm. (C) 2015 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:多时相遥感图像通常会遭受背景变化的影响,这会极大地破坏传统的区域特征和描述符摘要,尤其是在灾前和灾后之间,从而使得通过本地特征进行配准变得不可靠。由于形状具有相对稳定的信息,因此提出了一种基于多尺度边缘特征的旋转和尺度不变形状上下文。多尺度形态算子适合于检测形状的边缘,并且建立了高斯尺度空间的等效差以沿着所检测的边缘来检测局部尺度不变特征点。然后,具有改进的距离辨别力的旋转不变形状上下文用作特征描述符。针对距离形状的情况,提出了一种自适应阈值(SAT)距离划分坐标系,该特征改进了特征描述符在距中心点的中长像素距离内的辨别特性,同时又将其保持在较短的距离上。为了实现旋转不变性,将一维傅立叶变换的大小应用于计算角度形状上下文。最后,在获得参考图像和感测图像之间的薄板样条曲线转换后,评估残留误差。实验结果证明了该自动算法的鲁棒性,效率和准确性。 (C)2015年光电仪器工程师协会(SPIE)

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