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Markerless face tracking with synthetic priors

机译:使用合成先验技术进行无标记人脸跟踪

摘要

Provided are methods, systems, and computer-readable medium for synthetically generating training data to be used to train a learning algorithm that is capable of generating computer-generated images of a subject from real images that include the subject. The training data can be generated using a facial rig by changing expressions, camera viewpoints, and illumination in the training data. The training data can then be used for tracking faces in a real-time video stream. In such examples, the training data can be tuned to expected environmental conditions and camera properties of the real-time video stream. Provided herein are also strategies to improve training set construction by analyzing which attributes of a computer-generated image (e.g., expression, viewpoint, and illumination) require denser sampling.
机译:提供了用于合成生成训练数据的方法,系统和计算机可读介质,该训练数据用于训练学习算法,该学习算法能够从包括对象的真实图像中生成对象的计算机生成图像。可以使用面部装备通过更改训练数据中的表情,相机视点和照明来生成训练数据。然后可以将训练数据用于跟踪实时视频流中的面部。在这样的示例中,可以将训练数据调整为预期的环境条件和实时视频流的相机属性。本文还提供了通过分析计算机生成图像的哪些属性(例如表情,视点和照明)需要更密集采样来改善训练集构造的策略。

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