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Review of Human Gesture Recognition Based on Computer Vision Technology

机译:基于计算机视觉技术的人类手势识别述评

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Over the years, with continuous expansion of the application fields of intelligent video surveillance, technologies related to human gesture recognition have received more attention and become a research hotspot. This paper first shows the architecture of the intelligent surveillance system, and the corresponding computer vision task of human gesture recognition, such as target detection, feature fusion and scene understanding. Then, in order to better understand related technologies, typical methods based on statistics, template and deep learning are summarized, the characteristics and implementation of convolutional neural networks are introduced in detail. Third, some data sets are listed, and we compare existing models in different projects of human body pose estimation from performance indicators. Finally, the flow chart of crowd posture estimation is designed, with the key modules being explained, which helps better understand the mechanism of gesture recognition. Therefore, this paper has certain theoretical value and application significance.
机译:多年来,随着智能视频监控的应用领域的持续扩展,与人类手势识别有关的技术得到了更多的关注并成为研究热点。本文首先显示了智能监控系统的体系结构,以及人类手势识别的相应计算机视觉任务,例如目标检测,特征融合和场景理解。然后,为了更好地了解相关技术,总结了基于统计,模板和深度学习的典型方法,详细介绍了卷积神经网络的特征和实现。第三,列出了一些数据集,我们比较了从绩效指标的人体姿势估算的不同项目中的现有模型。最后,设计了人群姿势估计的流程图,并进行了备份模块,这有助于更好地理解手势识别的机制。因此,本文具有一定的理论值和应用意义。

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