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A Novel Edit Propagation Algorithm via L_0 Gradient Minimization

机译:一种基于L_0梯度最小化的新型编辑传播算法

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In this paper, we study how to perform edit propagation using L_0 gradient minimization. Existing propagation methods only take simple constraints into consideration and neglects image structure information. We propose a new optimization framework making use of L_0 gradient minimization, which can globally satisfy user-specified edits as well as tackle counts of non-zero gradients. In this process, a modified affinity matrix approximation method which efficiently reduces randomness is raised. We introduce a self-adaptive re-parameterization way to control the counts based on both original image and user inputs. Our approach is demonstrated by image recoloring and tonal values adjustments. Numerous experiments show that our method can significantly improve edit propagation via L_0 gradient minimization.
机译:在本文中,我们研究如何使用L_0梯度最小化执行编辑传播。现有的传播方法仅考虑简单的约束,而忽略了图像结构信息。我们提出了一个使用L_0梯度最小化的新优化框架,该框架可以全局满足用户指定的编辑以及非零梯度的计数。在此过程中,提出了一种有效降低随机性的改进的亲和力矩阵近似方法。我们引入了自适应的重新参数化方法,以基于原始图像和用户输入来控制计数。图像重新着色和色调值调整证明了我们的方法。大量实验表明,我们的方法可以通过L_0梯度最小化显着改善编辑传播。

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