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OpenPose:基于部件亲和力字段的实时多人 2D 姿态估计。

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

出版信息

IEEE Trans Pattern Anal Mach Intell. 2021 Jan;43(1):172-186. doi: 10.1109/TPAMI.2019.2929257. Epub 2020 Dec 4.

Abstract

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 OpenPose, the first open-source realtime system for multi-person 2D pose detection, including body, foot, hand, and facial keypoints.

摘要

实时多人 2D 姿态估计是使机器能够理解图像和视频中人物的关键组成部分。在这项工作中,我们提出了一种实时方法来检测图像中多个人的 2D 姿态。所提出的方法使用非参数表示,我们称之为部分亲和场 (PAFs),以学习将身体部位与图像中的个体相关联。这个自下而上的系统实现了高精度和实时性能,无论图像中的人数如何。在之前的工作中,PAFs 和身体部位位置估计在训练阶段同时进行细化。我们证明,仅进行 PAF 细化而不是同时进行 PAF 和身体部位位置细化,会显著提高运行时性能和准确性。我们还提出了第一个基于内部注释脚部数据集的组合身体和脚部关键点检测器,并将其公开发布。我们表明,与逐个运行相比,组合检测器不仅减少了推断时间,而且还保持了每个组件的准确性。这项工作最终发布了 OpenPose,这是第一个用于多人 2D 姿态检测的开源实时系统,包括身体、脚部、手部和面部关键点。

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