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Unite the People: Closing the Loop Between 3D and 2D Human Representations

机译:团结一致:关闭3D和2D人类表示之间的循环

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3D models provide a common ground for different representations of human bodies. In turn, robust 2D estimation has proven to be a powerful tool to obtain 3D fits "in-the-wild". However, depending on the level of detail, it can be hard to impossible to acquire labeled data for training 2D estimators on large scale. We propose a hybrid approach to this problem: with an extended version of the recently introduced SMPLify method, we obtain high quality 3D body model fits for multiple human pose datasets. Human annotators solely sort good and bad fits. This procedure leads to an initial dataset, UP-3D, with rich annotations. With a comprehensive set of experiments, we show how this data can be used to train discriminative models that produce results with an unprecedented level of detail: our models predict 31 segments and 91 landmark locations on the body. Using the 91 landmark pose estimator, we present state-of-the art results for 3D human pose and shape estimation using an order of magnitude less training data and without assumptions about gender or pose in the fitting procedure. We show that UP-3D can be enhanced with these improved fits to grow in quantity and quality, which makes the system deployable on large scale. The data, code and models are available for research purposes.
机译:3D模型为人体的不同表示提供了一个共同点。反过来,强大的2D估计已被证明是一个强大的工具,以获得3D适合“野外”。但是,根据细节的水平,很难在大规模上获取用于训练2D估计的标记数据。我们提出了一个混合方法对此问题:通过最近引入的Smplify方法的扩展版本,我们获得了高质量的3D身体模型适合多人姿势数据集。人类的注册人单独排序良好和糟糕的装配。此过程导致初始数据集,UP-3D,具有丰富的注释。通过一套全面的实验,我们展示了如何使用该数据来培训具有前所未有的细节水平的判别模型:我们的模型预测了31个段和91个地标位置在身体上。使用91个地标姿势估计器,我们使用较小的训练数据的数量级和形状估计来提出最先进的结果,并且在拟合过程中没有假设性别或姿势的假设。我们表明,通过这些改进的拟合来增强up-3d,以增长数量和质量,使系统能够在大规模上部署。数据,代码和模型可用于研究目的。

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