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Edge-Based Registration-Noise Estimation in VHR Multitemporal and Multisensor Images

机译:VHR多时相和多传感器图像中基于边缘的配准噪声估计

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摘要

Even after coregistration, very high resolution (VHR) multitemporal images acquired by different multispectral sensors (e.g., QuickBird and WordView) show a residual misregistration due to dissimilarities in acquisition conditions and in sensor properties. Residual misregistration can be considered as a source of noise and is referred to as registration noise (RN). Since RN is likely to have a negative impact on multitemporal information extraction, detecting and reducing it can increase multitemporal image processing accuracy. In this letter, we propose an approach to identify RN between VHR multitemporal and multisensor images. Under the assumption that dominant RN mainly exists along boundaries of objects, we propose to use edge information in high frequency regions to estimate it. This choice makes RN detection less dependent on radiometric differences and thus more effective in VHR multisensor image processing. In order to validate the effectiveness of the proposed approach, multitemporal multisensor data sets are built including QuickBird and WorldView VHR images. Both qualitative and quantitative assessments demonstrate the effectiveness of the proposed RN identification approach compared to the state-of-the-art one.
机译:即使在融合之后,由于不同的采集条件和传感器属性的不同,由不同的多光谱传感器(例如QuickBird和WordView)获得的超高分辨率(VHR)多时相图像也会显示出残留的配准不良。残留的重合失调可以被认为是噪声源,被称为对准噪声(RN)。由于RN可能会对多时相信息提取产生负面影响,因此检测和减少RN可以提高多时相图像处理的准确性。在这封信中,我们提出了一种在VHR多时相和多传感器图像之间识别RN的方法。在主要RN主要存在于对象边界的假设下,我们建议使用高频区域中的边缘信息进行估计。这种选择使RN检测较少依赖于辐射度差异,因此在VHR多传感器图像处理中更有效。为了验证所提出方法的有效性,建立了多时相多传感器数据集,其中包括QuickBird和WorldView VHR图像。与最新技术相比,定性和定量评估都证明了拟议的RN识别方法的有效性。

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