Subject Guided Eye Image Synthesis with Application to Gaze Redirection

Harsimran Kaur, R. Manduchi
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引用次数: 8

Abstract

We propose a method for synthesizing eye images from segmentation masks with a desired style. The style encompasses attributes such as skin color, texture, iris color, and personal identity. Our approach generates an eye image that is consistent with a given segmentation mask and has the attributes of the input style image. We apply our method to data augmentation as well as to gaze redirection. The previous techniques of synthesizing real eye images from synthetic eye images for data augmentation lacked control over the generated attributes. We demonstrate the effectiveness of the proposed method in synthesizing realistic eye images with given characteristics corresponding to the synthetic labels for data augmentation, which is further useful for various tasks such as gaze estimation, eye image segmentation, pupil detection, etc. We also show how our approach can be applied to gaze redirection using only synthetic gaze labels, improving the previous state of the art results. The main contributions of our paper are i) a novel approach for Style-Based eye image generation from segmentation mask; ii) the use of this approach for gaze-redirection without the need for gaze annotated real eye images
对象引导眼图像合成及其在注视重定向中的应用
我们提出了一种从具有期望样式的分割蒙版合成眼睛图像的方法。样式包含诸如肤色、纹理、虹膜颜色和个人身份等属性。我们的方法生成的眼睛图像与给定的分割蒙版一致,并具有输入样式图像的属性。我们将该方法应用于数据增强和凝视重定向。以往从合成眼图像合成真实眼图像进行数据增强的技术缺乏对生成属性的控制。我们证明了该方法在合成具有给定特征的真实眼睛图像方面的有效性,这些特征对应于数据增强的合成标签,这进一步有助于各种任务,如凝视估计,眼睛图像分割,瞳孔检测等。我们还展示了如何仅使用合成凝视标签将我们的方法应用于凝视重定向,从而改进了以前的最先进的结果。本文的主要贡献是:1)提出了一种基于分割蒙版的基于风格的眼睛图像生成方法;Ii)使用这种方法进行凝视重定向,而不需要凝视注释的真实眼睛图像
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