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Neural Puppet: Generative Layered Cartoon Characters

机译:神经木偶:分层生成的卡通人物

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We propose a learning based method for generating new animations of a cartoon character given a few example images. Our method is designed to learn from a traditionally animated sequence, where each frame is drawn by an artist, and thus the input images lack any common structure, correspondences, or labels. We express pose changes as a deformation of a layered 2.5D template mesh, and devise a novel architecture that learns to predict mesh deformations matching the template to a target image. This enables us to extract a common low-dimensional structure from a diverse set of character poses. We combine recent advances in differentiable rendering as well as mesh-aware models to successfully align common template even if only a few character images are available during training. In addition to coarse poses, character appearance also varies due to shading, out-of-plane motions, and artistic effects. We capture these subtle changes by applying an image translation network to refine the mesh rendering, providing an end-to-end model to generate new animations of a character with high visual quality. We demonstrate that our generative model can be used to synthesize in-between frames and to create data-driven deformation. Our template fitting procedure outperforms state-of-the-art generic techniques for detecting image correspondences.
机译:我们提出了一种基于学习的方法,用于在给定一些示例图像的情况下生成卡通人物的新动画。我们的方法旨在从传统的动画序列中学习,在传统的动画序列中,每一帧都是由艺术家绘制的,因此输入图像缺少任何通用的结构,对应关系或标签。我们将姿势变化表示为分层的2.5D模板网格的变形,并设计出一种新颖的体系结构,该体系结构可学习预测将模板与目标图像匹配的网格变形。这使我们能够从各种各样的角色姿势中提取出常见的低维结构。我们结合了差异化渲染和网格感知模型方面的最新进展,即使在训练过程中只有少数几个字符图像可用,也可以成功地对齐通用模板。除了粗略的姿势外,角色的外观也会因阴影,平面外运动和艺术效果而变化。我们通过应用图像翻译网络来细化网格渲染,捕获了这些细微的变化,提供了端到端模型来生成具有高视觉质量的角色的新动画。我们证明了我们的生成模型可用于合成框架之间的数据并创建数据驱动的变形。我们的模板拟合过程优于用于检测图像对应关系的最新通用技术。

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