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Complex human activities recognition using interval temporal syntactic model 被引量:1
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作者 夏利民 韩芬 王军 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第10期2578-2586,共9页
A novel method based on interval temporal syntactic model was proposed to recognize human activities in video flow. The method is composed of two parts: feature extract and activities recognition. Trajectory shape des... A novel method based on interval temporal syntactic model was proposed to recognize human activities in video flow. The method is composed of two parts: feature extract and activities recognition. Trajectory shape descriptor, speeded up robust features(SURF) and histograms of optical flow(HOF) were proposed to represent human activities, which provide more exhaustive information to describe human activities on shape, structure and motion. In the process of recognition, a probabilistic latent semantic analysis model(PLSA) was used to recognize sample activities at the first step. Then, an interval temporal syntactic model, which combines the syntactic model with the interval algebra to model the temporal dependencies of activities explicitly, was introduced to recognize the complex activities with a time relationship. Experiments results show the effectiveness of the proposed method in comparison with other state-of-the-art methods on the public databases for the recognition of complex activities. 展开更多
关键词 trajectory shape descriptor speeded up robust features(SURF) histograms of optical flow(hof) PLSA probabilistic latent semantic analysis syntactic model
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Human Action Recognition Based on Dense Trajectories Analysis and Random Forest 被引量:1
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作者 Pin-Zhong Pan Chung-Lin Huang 《Journal of Electronic Science and Technology》 CAS CSCD 2016年第4期370-376,共7页
This paper presents a human action recognition method. It analyzes the spatio-temporal grids along the dense trajectories and generates the histogram of oriented gradients (HOG) and histogram of optical flow (HOF)... This paper presents a human action recognition method. It analyzes the spatio-temporal grids along the dense trajectories and generates the histogram of oriented gradients (HOG) and histogram of optical flow (HOF) to describe the appearance and motion of the human object. Then, HOG combined with HOF is converted to bag-of-words (BoWs) by the vocabulary tree. Finally, it applies random forest to recognize the type of human action. In the experiments, KTH database and URADL database are tested for the performance evaluation. Comparing with the other approaches, we show that our approach has a better performance for the action videos with high inter-class and low inter-class variabilities. 展开更多
关键词 Bag-of-words (BoWs) dense trajectories histogram of optical flow hof histogram of oriented gradient (HOG) random forest vocabulary tree.
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基于混合时空特征描述子的人体动作识别 被引量:1
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作者 范晓杰 宣士斌 唐凤 《计算机技术与发展》 2018年第2期98-101,118,共5页
针对基于局部时空特征的行为识别中获取高效兴趣点、合理描述兴趣点及表征运动特征等关键问题,提出一种基于混合时空特征和SOM网络的新的行为识别框架。首先,从输入视频中提取出多尺度的Dollar时空兴趣点,并由时空兴趣点提取用于描述局... 针对基于局部时空特征的行为识别中获取高效兴趣点、合理描述兴趣点及表征运动特征等关键问题,提出一种基于混合时空特征和SOM网络的新的行为识别框架。首先,从输入视频中提取出多尺度的Dollar时空兴趣点,并由时空兴趣点提取用于描述局部运动区域的视频块。然后,提出多向投影的光流直方图(DPHOF)构造方法,并与3D梯度方向直方图(HOG3D)结合描述视频块;利用SOM构造全局视频描述子。最后,用K最近邻(KNN)进行分类。对该方法在KTH和UCF-YT数据集上进行了验证,取得了很好的识别效果。实验结果表明,提出的DPHOF描述符能高效表示时空兴趣点,并优于HOG3D和HOF的描述性,且由SOM构造出的全局视频描述子可以高效地表示视频特征,该方法具有更好的识别结果。 展开更多
关键词 时空兴趣点 3D有向直方图 光流直方图 自组织特征映射
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