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Human Action Recognition Using Trajectory-Based Spatiotemporal Descriptors

机译:使用基于轨迹的时空描述符的人类行动识别

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摘要

Human action recognition has gained popularity because of its wide applicability in automatic retrieval of videos of particular action using visual features. An approach is introduced for human action recognition using trajectory-based spatiotemporal descriptors. Trajectories of minimum Eigen feature points help to capture the important motion information of videos. Optical flow is used to track the feature points smoothly and to obtain robust trajectories. Descriptors are extracted around the trajectories to characterize appearance by Histogram of Oriented Gradient (HOG), motion by Motion Boundary Histogram (MBH). MBH computed from differential optical flow outperforms for videos with more camera motion. The encoding of feature vectors is performed by bag of visual features technique. SVM with nonlinear kernel is used for recognition of actions using classification. The performance of proposed approach is measured on various datasets of human action videos.
机译:由于其使用可视化功能的特定行动视频的自动检索,人类行动识别已经获得了普及。 使用基于轨迹的时空描述符来引入人类行动识别的方法。 最小EIGEN功能点的轨迹有助于捕获视频的重要动作信息。 光学流量用于平滑地跟踪特征点并获得鲁棒的轨迹。 根据面向梯度(HOG)的直方图,通过运动边界直方图(MBH),在轨迹周围提取描述符以表征外观。 MBH从差分光流量计算,对于具有更多相机运动的视频效果。 特征向量的编码由视觉特征技术袋进行。 具有非线性内核的SVM用于使用分类识别操作。 在人类行动视频的各种数据集上测量了所提出的方法的性能。

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