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Robust Rule-Based Method for Human Activity Recognition

机译:鲁棒的基于规则的人类活动识别方法

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Human activity recognition is an active research field in computer vision and image processing. In this paper we propose a robust rule-based method for the task of recognition of human activities and scenarios in video image sequences. The methodology uses a context-free grammar based representation scheme to represent human actions. The proposed system consists of three major steps. Initially by using a single camera, in a variety of angles, the movement of the object is detected, and object silhouette is generated in each frame. Then, the proposed method for generating a silhouette is presented. The silhouette is used to determine human activities such as running and walking. In the last stage, a rule-based classifier is used to classify the action. The experimental results show that the system can recognize seven types of primitive actions with high accuracy.
机译:人类活动识别是计算机视觉和图像处理领域的活跃研究领域。在本文中,我们为视频图像序列中人类活动和场景的识别任务提出了一种基于规则的鲁棒方法。该方法使用基于上下文的无语法表示法来表示人类行为。拟议的系统包括三个主要步骤。最初,使用单个摄像机以各种角度检测物体的运动,并在每个帧中生成物体轮廓。然后,提出了一种生成轮廓的方法。该轮廓用于确定人类活动,例如跑步和步行。在最后阶段,使用基于规则的分类器对操作进行分类。实验结果表明,该系统可以识别出七种原始动作。

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