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Model Based Augmentation and Testing of an Annotated Hand Pose Dataset

机译:带模型的带手势手势数据集的增强和测试

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Recent advances of deep learning technology enable one to train complex input-output mappings, provided that a high quality training set is available. In this paper, we show how to extend an existing dataset of depth maps of hand annotated with the corresponding 3D hand poses by fitting a 3D hand model to smart glove-based annotations and generating new hand views. We make available our code and the generated data. Based on the present procedure and our previous results, we suggest a pipeline for creating high quality data.
机译:深度学习技术的最新进展使人们能够训练复杂的输入-输出映射,前提是可以使用高质量的训练集。在本文中,我们展示了如何通过将3D手模型拟合到基于智能手套的注释中并生成新的手视图,来扩展现有手的深度图数据集,该数据集带有相应的3D手姿势。我们提供我们的代码和生成的数据。根据当前过程和我们先前的结果,我们建议创建高质量数据的管道。

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