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Skeleton-guided vectorization of Chinese calligraphy images

机译:骨架引导的中国书法图像矢量化

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How to automatically generate compact and high-quality vectorization for Chinese calligraphy images is a challenging problem, since these images usually suffer from noisy contours and discontinuous strokes. In this paper, we propose a skeleton guided approach to vectorize Chinese calligraphy images. Since the skeleton reflects the writing trace and it is less influenced by contour noises, our method could extract the important writing style from the noisy contours. Specifically, in our method, the calligraphy image is first preprocessed by binarization and denoising. Then salient contour points are detected by a novel algorithm. Afterwards, under the guidance of skeleton information, the salient points are classified into corner points and joint points. Finally, a dynamic curve fitting procedure is applied to generate the vectorization result. Experimental results demonstrate that our skeleton-guided approach could automatically distinguish tiny features from contour noises and thus obtains more visually satisfactory performance compared to other existing methods.
机译:如何自动为中国书法图像生成紧凑且高质量的矢量化是一个具有挑战性的问题,因为这些图像通常会出现嘈杂的轮廓和不连续的笔划。在本文中,我们提出了一种骨架导向的方法来对中国书法图像进行矢量化处理。由于骨架反映了书写轨迹,并且受轮廓噪声的影响较小,因此我们的方法可以从嘈杂的轮廓中提取出重要的书写风格。具体来说,在我们的方法中,首先通过二值化和去噪对书法图像进行预处理。然后通过一种新颖的算法检测出轮廓轮廓点。然后,在骨架信息的指导下,将显着点分为角点和关节点。最后,采用动态曲线拟合程序生成矢量化结果。实验结果表明,与其他现有方法相比,我们的骨架引导方法可以自动将微小特征与轮廓噪声区分开,从而获得更令人满意的视觉效果。

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