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A computational vision approach to image registration

机译:计算机视觉图像配准方法

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摘要

A computational vision approach is presented for the estimation of 2-D translation, rotation, and scale from two partially overlapping images. The approach results in a fast method that produces good results even when large rotation and translation have occurred between the two frames and the images are devoid of significant features. An illuminant direction estimation method is first used to obtain an initial estimation of camera rotation. A small number of feature points are then located, using a Gabor wavelet model for detecting local curvature discontinuities. An initial estimate of scale and translation is obtained by pairwise matching of the feature points detected from both frames. Finally, hierarchical feature matching is performed to obtain an accurate estimate of translation, rotation and scale. A method for error analysis of matching results is also presented. Experiments with synthetic and real images show that this algorithm yields accurate results when the scale of the images differ by up to 10%, the overlap between the two frames is as small as 23%, and the camera rotation between the two frames is significant. Experimental results and applications are presented.
机译:提出了一种计算视觉方法,用于从两个部分重叠的图像估算二维平移,旋转和缩放。该方法产生了一种快速方法,即使在两个帧之间发生了大的旋转和平移并且图像没有明显的特征时,该方法也可以产生良好的结果。首先使用光源方向估计方法来获得摄像机旋转的初始估计。然后,使用Gabor小波模型定位少数特征点,以检测局部曲率不连续性。通过对从两个帧中检测到的特征点进行成对匹配,可以获得缩放和平移的初始估计。最后,执行层次特征匹配以获得对平移,旋转和缩放的准确估计。还提出了一种对匹配结果进行误差分析的方法。使用合成图像和真实图像进行的实验表明,当图像的比例尺相差最大10%,两帧之间的重叠率低至23%,并且两帧之间的摄像头旋转很明显时,该算法可产生准确的结果。介绍了实验结果和应用。

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