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Semisupervised manifold learning for color transfer between multiview images

机译:半监督流形学习,用于多视图图像之间的颜色转换

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In multiview image stitching, the colors of images in a scene might vary when images are taken under different illumination or camera settings. A common way to produce a seamless stitched image is to transform the colors of a target image to match that of a source image. In this paper we present a color transfer method based on two premises: first, pixels in the generated image should have similar colors with their corresponding pixels in the source image. Second, pixels with similar colors should still have similar colors after color transfer. Our method can be considered as a semisupervised manifold learning approach, where the corresponding pixels of the input images serve as the labeled data. Our goal is to learn a final image which not only shares the same colors with the source image but also has the same image structure with the target image. While manifold learning methods aim to find an embedded space to represent the data with minimum structure loss, the proposed method further constrains the solution space using the labeled data. This paper introduces a parametric linear method and a nonparametric nonlinear method to tackle different types of color changes. Experimental results show the effectiveness of our methods both quantitatively and qualitatively.
机译:在多视图图像拼接中,当在不同的照明或相机设置下拍摄图像时,场景中图像的颜色可能会有所不同。产生无缝缝合图像的常见方法是变换目标图像的颜色以匹配源图像的颜色。在本文中,我们提出了一种基于两个前提的颜色转移方法:首先,生成的图像中的像素应具有与源图像中的相应像素相似的颜色。其次,颜色相似的像素在颜色转移后仍应具有相似的颜色。我们的方法可视为半监督流形学习方法,其中输入图像的相应像素用作标记数据。我们的目标是学习最终图像,该图像不仅与源图像具有相同的颜色,而且与目标图像具有相同的图像结构。虽然流形学习方法旨在找到一个具有最小结构损失的嵌入式空间来表示数据,但该方法还使用标记数据进一步约束了解决方案空间。本文介绍了用于处理不同类型颜色变化的参数线性方法和非参数非线性方法。实验结果从数量和质量上证明了我们方法的有效性。

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