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Two-Person Interaction Action Recognition Based on Multi-Source Information Fusion Algorithm

机译:基于多源信息融合算法的双人交互动作识别

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The existing methods of two-person interaction action recognition based on RGB image is greatly affected by illumination change, object occlusion and environmental change. Considering the respective advantages of the RGB image and the depth image, and the characteristics of information complementarity, this paper proposed a multi - source information fusion algorithm. In our proposed method, the recognition probability of the RGB image and the depth image are weighted fused for the two-person interaction action recognition. Firstly, the frame difference method and ViBe algorithm are respectively used for moving object detection and segmentation. Secondly, histogram of oriented gradient (HOG) features are respectively extracted from the moving regions of the RGB image and the depth image. Thirdly, the nearest neighbor classifier algorithm is used to recognize the actions of the RGB image and the depth image. Finally, the recognition results of the RGB image and the depth image are weighted fused. Experimental results show that the method achieves the better recognition rate.
机译:基于RGB图像的双人交互动作识别的现有方法受到照明变化,对象遮挡和环境变化的大大影响。考虑到RGB图像和深度图像的各个优点,以及信息互补性的特征,提出了一种多源信息融合算法。在我们所提出的方法中,RGB图像的识别概率和深度图像被融合用于双人交互动作识别。首先,帧差法和Vibe算法分别用于移动对象检测和分割。其次,从RGB图像和深度图像的移动区域分别提取取向梯度(HOG)特征的直方图。第三,最近的邻分类器算法用于识别RGB图像和深度图像的动作。最后,RGB图像和深度图像的识别结果被加权融合。实验结果表明,该方法达到了更好的识别率。

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