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A Comparative Study on Adaptive Local Image Registration Methods

机译:自适应局部图像配准方法的比较研究

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Adaptive Local Image Registration based on adaptive filtering can register both grayscale images and color images. Here the local distortions are corrected without explicitly estimating the displacement field. A filter of appropriate size convolves with reference image and gives the pixel values corresponding to the distorted image and the filter is updated in each stage of the convolution. When the filter converges to the system model, it provides the registered image. In this method the 2-D image plane is mapped into a 1-D sequence using space-filling curves. Adaptive Local Image Registration can be implemented in two ways as Pixel-By-Pixel Method and Block-Based Method. This work did a comparative study between these two methods. The two methods are tested using different types of geometrically distorted images and the quantitative performance evaluation is done using Mean Squared Error (MSE), Mean Absolute Error (MAE), Peak Signal-to-Noise Ratio (PSNR) and Structural Similarity (SSIM) index. The Block-Based method shows better performance than Pixel-By-Pixel Method.
机译:基于自适应滤波的自适应本地图像配准可以配准灰度图像和彩色图像。在此,在不明确估计位移场的情况下校正了局部畸变。适当大小的滤波器与参考图像进行卷积,并给出与失真图像相对应的像素值,并且在卷积的每个阶段更新该滤波器。当过滤器收敛到系统模型时,它将提供注册的图像。在这种方法中,使用空间填充曲线将二维图像平面映射为一维序列。自适应局部图像配准可以以两种方式实现,即逐像素方法和基于块的方法。这项工作对这两种方法进行了比较研究。使用不同类型的几何失真图像测试这两​​种方法,并使用均方误差(MSE),平均绝对误差(MAE),峰值信噪比(PSNR)和结构相似度(SSIM)进行定量性能评估指数。基于块的方法显示出比逐像素方法更好的性能。

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