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Facial image reconstruction by estimated muscle parameter

机译:估计肌肉参数的面部图像重建

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Muscle based face image synthesis is one of the most realistic approach to realize life-like agent in computer. Facial muscle model is composed of facial tissue elements and muscles. In this model, forces are calculated effecting facial tissue element by contraction of each muscle strength, so the combination of each muscle parameter decide a specific facial expression. Now each muscle parameter is decided on trial and error procedure comparing the sample photograph and generated image using our Muscle-Editor to generate a specific face image. In this paper, we propose the strategy of automatic estimation of facial muscle parameters from 2D marker movements using neural network. This corresponds to the non-realtime 3D facial motion tracking from 2D image under the physics based condition.
机译:基于肌肉的面部图像合成是实现计算机中生活的代理的最现实的方法之一。面部肌肉模型由面部组织元素和肌肉组成。在该模型中,通过每个肌肉强度的收缩来计算面部组织元素的力,因此每个肌肉参数的组合决定特定的面部表情。现在,每个肌肉参数都决定使用我们的肌肉编辑器比较样本照片和生成的图像来生成特定的面部图像的试验和错误过程。本文采用神经网络提出了从2D标记运动自动估计面部肌肉参数的策略。这对应于根据基于物理条件的2D图像的非实时3D面部运动跟踪。

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