整合姿势,以增强从单视图视频跟踪对象的形状

J. Hemavathy, L. Sindhia, Dhananjay Kumar
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引用次数: 0

摘要

在计算机视觉中,跟踪人体姿势近年来受到越来越多的关注。现有的方法采用多视图视频和摄像机校准来增强物体在三维视图中的形状。本文研究了单视图视频中物体形状的跟踪和部分重建问题。提出的综合方法的目标是在二维视图中更准确地检测人的运动。该方法将基于轮廓的姿态估计和基于场景流的姿态估计相结合。基于轮廓的姿态估计用于增强物体的形状以进行三维重建,基于场景流的姿态估计用于捕获物体的大小和稳定性。通过整合这两种姿势,可以从单视图视频中计算出物体的精确形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integration of poses to enhance the shape of the object tracking from a single view video
In computer vision, tracking human pose has received a growing attention in recent years. The existing methods used multi-view videos and camera calibrations to enhance the shape of the object in 3D view. In this paper, tracking and partial reconstruction of the shape of the object from a single view video is identified. The goal of the proposed integrated method is to detect the movement of a person more accurately in 2D view. The integrated method is a combination of Silhouette based pose estimation and Scene flow based pose estimation. The silhouette based pose estimation is used to enhance the shape of the object for 3D reconstruction and scene flow based pose estimation is used to capture the size as well as the stability of the object. By integrating these two poses, the accurate shape of the object has been calculated from a single view video.
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