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CG2Real: Improving the Realism of Computer Generated Images Using a Large Collection of Photographs

机译:CG2Real:使用大量照片来提高计算机生成图像的真实感

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摘要

Computer-generated (CG) images have achieved high levels of realism. This realism, however, comes at the cost of long and expensive manual modeling, and often humans can still distinguish between CG and real images. We introduce a new data-driven approach for rendering realistic imagery that uses a large collection of photographs gathered from online repositories. Given a CG image, we retrieve a small number of real images with similar global structure. We identify corresponding regions between the CG and real images using a mean-shift cosegmentation algorithm. The user can then automatically transfer color, tone, and texture from matching regions to the CG image. Our system only uses image processing operations and does not require a 3D model of the scene, making it fast and easy to integrate into digital content creation workflows. Results of a user study show that our hybrid images appear more realistic than the originals.
机译:计算机生成的(CG)图像已达到很高的真实感。然而,这种现实主义是以漫长而昂贵的手动建模为代价的,并且人类通常仍可以区分CG和真实图像。我们引入了一种新的数据驱动方法来渲染逼真的图像,该方法使用了从在线存储库中收集的大量照片。给定CG图像,我们将检索少量具有相似全局结构的真实图像。我们使用均值平移分段算法识别CG和真实图像之间的对应区域。然后,用户可以自动将颜色,色调和纹理从匹配区域传输到CG图像。我们的系统仅使用图像处理操作,不需要场景的3D模型,因此可以快速,轻松地集成到数字内容创建工作流程中。用户研究的结果表明,我们的混合图像看起来比原始图像更真实。

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