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OpenPose: Realtime Multi-Person 2D Pose Estimation Using Part Affinity Fields

机译:Openpose:使用零件关联字段实时多人2D姿态估计

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Realtime multi-person 2D pose estimation is a key component in enabling machines to have an understanding of people in images and videos. In this work, we present a realtime approach to detect the 2D pose of multiple people in an image. The proposed method uses a nonparametric representation, which we refer to as Part Affinity Fields (PAFs), to learn to associate body parts with individuals in the image. This bottom-up system achieves high accuracy and realtime performance, regardless of the number of people in the image. In previous work, PAFs and body part location estimation were refined simultaneously across training stages. We demonstrate that a PAF-only refinement rather than both PAF and body part location refinement results in a substantial increase in both runtime performance and accuracy. We also present the first combined body and foot keypoint detector, based on an internal annotated foot dataset that we have publicly released. We show that the combined detector not only reduces the inference time compared to running them sequentially, but also maintains the accuracy of each component individually. This work has culminated in the release of Open Pose, the first open-source realtime system for multi-person 2D pose detection, including body, foot, hand, and facial keypoints.
机译:实时多人2D姿势估计是使机器能够了解图像和视频中的人员的关键组成部分。在这项工作中,我们介绍了一种实时方法来检测图像中多个人的2D姿势。该方法使用非参考表示,我们将其称为零件关联字段(PAF),学习将身体部位与图像中的各个相关联。无论图像中的人数如何,这个自下而上的系统都能实现高精度和实时性能。在先前的工作中,PAF和身体部位位置估计在训练阶段同时精制。我们证明了仅限PAF的细化而不是PAF和身体部位位置细化导致运行时性能和准确性的大幅增加。我们还介绍了第一个组合的身体和脚键点检测器,基于我们公开发布的内部注释的脚数据集。我们表明,与顺序运行相比,组合的探测器不仅可以减少推理时间,而且还可以单独维持每个组件的准确性。这项工作在开放姿势的释放中,这是多人2D姿势检测的第一个开源实时系统,包括身体,脚,手和面部关键点。

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