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High-Quality Passive Facial Performance Capture using Anchor Frames

机译:使用锚框进行高质量被动面部表情捕捉

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We present a new technique for passive and markerless facial performance capture based on anchor frames. Our method starts with high resolution per-frame geometry acquisition using state-of-the-art stereo reconstruction, and proceeds to establish a single triangle mesh that is propagated through the entire performance. Leveraging the fact that facial performances often contain repetitive subsequences, we identify anchor frames as those which contain similar facial expressions to a manually chosen reference expression. Anchor frames are automatically computed over one or even multiple performances. We introduce a robust image-space tracking method that computes pixel matches directly from the reference frame to all anchor frames, and thereby to the remaining frames in the sequence via sequential matching. This allows us to propagate one reconstructed frame to an entire sequence in parallel, in contrast to previous sequential methods. Our anchored reconstruction approach also limits tracker drift and robustly handles occlusions and motion blur. The parallel tracking and mesh propagation offer low computation times. Our technique will even automatically match anchor frames across different sequences captured on different occasions, propagating a single mesh to all performances.
机译:我们提出了一种基于锚帧的被动和无标记面部表情捕捉的新技术。我们的方法从使用最先进的立体重建技术获取高分辨率的每帧几何图形开始,然后逐步建立一个在整个性能中传播的单个三角形网格。利用面部表演经常包含重复的子序列这一事实,我们将锚帧标识为包含与手动选择的参考表情相似的面部表情的锚帧。锚帧是在一项或多项表演中自动计算的。我们引入了一种鲁棒的图像空间跟踪方法,该方法可以直接从参考帧到所有锚帧,从而通过顺序匹配,与序列中的其余帧计算像素匹配。与先前的顺序方法相比,这使我们可以将一个重建的帧并行传播到整个序列。我们的固定重建方法还可以限制跟踪器漂移,并稳健地处理遮挡和运动模糊。并行跟踪和网格传播提供了较低的计算时间。我们的技术甚至可以在不同情况下捕获的不同序列之间自动匹配锚帧,从而将单个网格传播到所有表演。

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