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Depth-aware image vectorization and editing

机译:深度感知图像矢量化和编辑

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摘要

Image vectorization is one of the primary means of creating vector graphics. The quality of a vectorized image depends crucially on extracting accurate features from input raster images. However, correct object edges can be difficult to detect when color gradients are weak. We present an image vectorization technique that operates on a color image augmented with a depth map and uses both color and depth edges to define vectorized paths. We output a vectorized result as a diffusion curve image. The information extracted from the depth map allows us more flexibility in the manipulation of the diffusion curves, in particular permitting high-level object segmentation. Our experimental results demonstrate that this method achieves high reconstruction quality and provides greater control in the organization and editing of vectorized images than existing work based on diffusion curves.
机译:图像矢量化是创建矢量图形的主要方法之一。矢量化图像的质量关键取决于从输入栅格图像中提取准确的特征。但是,当颜色渐变较弱时,可能很难检测到正确的对象边缘。我们提出了一种图像矢量化技术,该技术可对带有深度图的彩色图像进行操作,并同时使用颜色和深度边缘来定义矢量化路径。我们输出矢量化结果作为扩散曲线图像。从深度图提取的信息使我们在处理扩散曲线时更具灵活性,特别是允许进行高级对象分割。我们的实验结果表明,与基于扩散曲线的现有工作相比,该方法可实现较高的重建质量,并在矢量化图像的组织和编辑方面提供了更好的控制。

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