首页> 外文会议>Applications of Digital Image Processing XXVIII >A NEW TWO-LEVEL EFFICIENT TECHNIQUE FOR 2D IMAGE PATCHES REGISTRATION VIA OPTIMIZED CROSS CORRELATION, WAVELET TRANSFORM AND MOMENTS OF INERTIA WITH APPLICATION TO LADAR IMAGING
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A NEW TWO-LEVEL EFFICIENT TECHNIQUE FOR 2D IMAGE PATCHES REGISTRATION VIA OPTIMIZED CROSS CORRELATION, WAVELET TRANSFORM AND MOMENTS OF INERTIA WITH APPLICATION TO LADAR IMAGING

机译:通过优化的互相关,小波变换和惯性矩对二维图像斑进行配准的一种新的两层高效技术在激光成像中的应用

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A new fast feature-based approach for efficient and accurate automated image registration with applications to multiple-views or Multi-sensor LADAR imaging is presented. As it is known, highly accurate and efficient Image registration is highly needed and desired in ground or Airborne LADAR imaging. The proposed approach is two-fold: First, direct comparison of sub-image patches of the overlapping images is performed applying the normalized cross-correlation technique. A pre-specified window sub-image patch size is used to speed up the matching process. In particular, a 65x65 window is defined in the right 50% of the left image (reference image) then, a matching window in the left 50% of the right image (unregistered image) is searched. The beauty of this approach is that the original images are reduced to small and similar sub-image patches of size 65x65, reducing tremendously the computation time of the matching point pairs search process, which as we show, speeds up tremendously the derivation of the matching points pairs described in the next phase. Second, Wavelet transform is applied then to the small and similar sub-image patches to extract a number of matching feature points. Each feature point is an edge point whose edge response is the maximum within a neighborhood. The normalized cross correlation technique is applied again this time to find the matching pairs between the feature points. From the matching pairs, the moments of inertia are applied to estimate the rigid transformation parameters between the overlapping images. In general, the overlapping images can have an arbitrarily large orientation difference. Therefore, this angle must be found first to correct the unregistered image. In order to estimate the rotation angle, we show how a so-called "angle histogram" is derived and calculated. The rotation angle selected is the one that corresponds to the maximum peak in the angle histogram. We show how the proposed approach is of an order of magnitude faster than the existing methods, on a single-processor computer. We show also that the proposed approach is automatic, robust, and can work with any partially overlapping images rotated from each other. Experimental results using rotated and non-rotated images are presented.
机译:提出了一种新的基于快速功能的方法,该方法可用于多视图或多传感器LADAR成像,从而实现高效,准确的自动图像配准。众所周知,在地面或机载LADAR成像中非常需要和希望有高度准确和高效的图像配准。所提出的方法有两个方面:首先,使用归一化互相关技术对重叠图像的子图像块进行直接比较。预先指定的窗口子图像补丁大小可用于加快匹配过程。特别地,在左图像(参考图像)的右50%中定义65x65窗口,然后在右图像(未注册图像)的左50%中搜索匹配窗口。这种方法的优点是将原始图像缩小为尺寸为65x65的较小且相似的子图像块,从而极大地减少了匹配点对搜索过程的计算时间,正如我们所展示的,这极大地加快了匹配的推导过程点在下一阶段中描述。其次,将小波变换应用于较小的相似子图像块,以提取多个匹配特征点。每个特征点都是一个边缘点,其边缘响应在邻域内最大。这次再次应用归一化互相关技术,以找到特征点之间的匹配对。从匹配对中,应用惯性矩来估计重叠图像之间的刚性变换参数。通常,重叠图像可以具有任意大的取向差。因此,必须首先找到该角度以校正未注册的图像。为了估计旋转角度,我们展示了如何导出和计算所谓的“角度直方图”。所选的旋转角度是与角度直方图中的最大峰值相对应的旋转角度。我们将展示在单处理器计算机上所提出的方法比现有方法快一个数量级的过程。我们还表明,提出的方法是自动的,健壮的,并且可以与彼此旋转的任何部分重叠的图像一起使用。提出了使用旋转和非旋转图像的实验结果。

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