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Human Body Parts Tracking: Applications to Activity Recognition.

机译:人体部位跟踪:在活动识别中的应用。

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摘要

As cameras and computers became popular, the applications of computer vision techniques attracted attention enormously. One of the most important applications in the computer vision community is human activity recognition. In order to recognize human activities, we propose a human body parts tracking system that tracks human body parts such as head, torso, arms and legs in order to perform activity recognition tasks in real time.;This thesis presents a real-time human body parts tracking system (i.e. HBPT) from video sequences. Our body parts model is mostly represented by body components such as legs, head, torso and arms. The body components are modeled using torso location and size which are obtained by a torso tracking method in each frame. In order to track the torso, we are using a blob tracking module to find the approximate location and size of the torso in each frame. By tracking the torso, we will be able to track other body parts based on their location with respect to the torso on the detected silhouette. In the proposed method for human body part tracking, we are also using a refining module to improve the detected silhouette by refining the foreground mask (i.e. obtained by background subtraction) in order to detect the body parts with respect to torso location and size. Having found the torso size and location, the region of each human body part on the silhouette will be modeled by a 2D-Gaussian blob in each frame in order to show its location, size and pose. The proposed approach described in this thesis tracks accurately the body parts in different illumination conditions and in the presence of partial occlusions. The proposed approach is applied to activity recognition tasks such as approaching an object, carrying an object and opening a box or suitcase. This approach shows promising results to future work that would result in a human body parts tracking system for recognizing more complicated activities which can lead to higher-level applications such as intent recognition.;Keywords - Human Activity Recognition, Intent Recognition, Object Manipulation, Human Body Parts Tracking, Blob Tracking, Gaussian Blob Modeling.
机译:随着照相机和计算机的普及,计算机视觉技术的应用引起了极大的关注。人类活动识别是计算机视觉社区中最重要的应用之一。为了识别人体活动,我们提出了一种人体部位跟踪系统,该系统可以跟踪人体的头部,躯干,手臂和腿等部位,以便实时执行活动识别任务。视频序列的零件跟踪系统(即HBPT)。我们的身体部位模型主要由腿,头,躯干和手臂等身体部位代表。使用躯干的位置和大小对身体部位建模,这些位置和大小通过躯干跟踪方法在每个帧中获得。为了跟踪躯干,我们使用Blob跟踪模块在每个帧中找到躯干的大致位置和大小。通过跟踪躯干,我们将能够基于其他身体部位在检测到的轮廓上相对于躯干的位置来跟踪。在提出的人体部位跟踪方法中,我们还使用精炼模块通过精炼前景蒙版(即通过背景减法获得)来改善检测到的轮廓,以检测相对于躯干位置和大小的人体部位。找到躯干的大小和位置后,剪影中每个人体部位的区域将通过每个帧中的2D高斯斑点建模,以显示其位置,大小和姿势。本文所描述的方法可以准确地跟踪在不同光照条件下以及存在局部遮挡的情况下的身体部位。所提出的方法被应用于活动识别任务,例如接近物体,携带物体并打开盒子或手提箱。这种方法对未来的工作显示出令人鼓舞的结果,它将导致人体零件跟踪系统识别更复杂的活动,从而导致更高层次的应用程序,例如意图识别。;关键词-人类活动识别,意图识别,对象操纵,人类身体部位跟踪,斑点跟踪,高斯斑点建模。

著录项

  • 作者

    Dargazany, Aras.;

  • 作者单位

    University of Nevada, Reno.;

  • 授予单位 University of Nevada, Reno.;
  • 学科 Computer Science.
  • 学位 M.S.
  • 年度 2011
  • 页码 44 p.
  • 总页数 44
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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