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Multi-Person Pose Estimation with Human Detection: A Parallel Approach

机译:具有人体检测的多人姿态估计:平行方法

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Human pose estimation is a fundamental research topic in computer vision. This topic has been largely improved recently thanks to the development of convolution neural network. This paper proposes a new CNN architecture which combines a key-points estimator and an object detector. This network can detect poses of all people and the around objects in the image in parallel. In general, to address the multi-person pose estimation, the network generates human key-points and bounding boxes simultaneously. Thus, it ensembles these key-points into full poses of multiple people based on the bounding boxes.
机译:人类姿势估计是计算机愿景中的基本研究课题。由于卷积神经网络的发展,该主题最近一直在很大程度上得到了改善。本文提出了一种新的CNN架构,它结合了键点估计器和对象检测器。该网络可以并行地检测所有人员和周围对象的姿势。通常,为了解决多人姿势估计,网络同时生成人的密钥点和边界框。因此,它将这些关键点整合到基于边界框的多个人的完整姿势。

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