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A Study on the Learning Based Human Pose Recognition

机译:基于学习的人体姿势识别研究

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Human pose recognition is considered a well-known process of estimating the human body pose from a single image or a series of video frames. There exist many applications that can benefit from human pose technology e.g. activity recognition, human tracking, 3D gaming, character animation, clinical analysis of human gait and other HCI applications. Due to its many challenges, such as illumination, occlusion, outdoor environment and clothing, it is considered one of the active areas in computer vision. For the last 15 years, Human pose recognition problem significantly gained interest of many researchers and therefore, many techniques were proposed in order to address the challenges of human pose recognition. In this study, we review the recently progressed work in human pose recognition using computer vision feature extraction and machine learning classification techniques. Accordingly, we identify gaps in existing work and give direction for future work.
机译:人体姿势识别被认为是从单个图像或一系列视频帧估计人体姿势的众所周知的过程。存在许多可以受益于人体姿势技术的应用,例如活动识别,人体跟踪,3D游戏,角色动画,人体步态的临床分析和其他HCI应用程序。由于存在许多挑战,例如照明,遮挡,室外环境和衣服,它被认为是计算机视觉中的活跃领域之一。在过去的15年中,人体姿势识别问题引起了许多研究者的极大兴趣,因此,提出了许多技术来应对人体姿势识别的挑战。在这项研究中,我们回顾了使用计算机视觉特征提取和机器学习分类技术在人体姿势识别方面最近取得的进展。因此,我们确定了现有工作中的差距,并为以后的工作指明了方向。

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