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首页> 外文期刊>ACM Transactions on Graphics >Visio-lization: Generating Novel Facial Images
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Visio-lization: Generating Novel Facial Images

机译:可视化:生成新颖的面部图像

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摘要

Our goal is to generate novel realistic images of faces using a model trained from real examples. This model consists of two components: First we consider face images as samples from a texture with spatially varying statistics and describe this texture with a local non-parametric model. Second, we learn a parametric global model of all of the pixel values. To generate realistic faces, we combine the strengths of both approaches and condition the local non-parametric model on the global parametric model. We demonstrate that with appropriate choice of local and global models it is possible to reliably generate new realistic face images that do not correspond to any individual in the training data. We extend the model to cope with considerable intra-class variation (pose and illumination). Finally, we apply our model to editing real facial images: we demonstrate image in-painting, interactive techniques for improving synthesized images and modifying facial expressions.
机译:我们的目标是使用从真实示例中训练的模型来生成面部的新颖逼真的图像。该模型由两个部分组成:首先,我们将人脸图像视为来自具有空间变化统计信息的纹理的样本,并使用局部非参数模型描述该纹理。其次,我们学习所有像素值的参数全局模型。为了生成逼真的面孔,我们结合了两种方法的优势,并在全局参数模型上对局部非参数模型进行了条件设定。我们证明,通过适当选择局部和全局模型,可以可靠地生成与训练数据中的任何个人都不对应的新的逼真的面部图像。我们扩展了模型以应对相当大的类内变化(姿势和照明)。最后,我们将模型应用于编辑真实的面部图像:我们演示了图像绘画,交互式技术,以改善合成图像和修改面部表情。

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