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Real-time semantic context labeling for image understanding

机译:实时语义上下文标记,用于图像理解

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The use of context information in a scene is an important aid for full semantic scene understanding in security and surveillance applications. To this end, this paper presents an innovative semantic context-labeling algorithm for three context classes, trading-off quality and real-time execution. Our system consists of three consecutive stages: image segmentation, region-based feature extraction and classification. We propose the joint use of the features color in HSV space, texture from Gabor filters and spatial context, in combination with the Directional Nearest Neighbor (DNN) method for constructing the undirected graph for segmentation. Compared to recent literature, this combination is over 35 times faster and achieves a coverability rate that is 65% higher.
机译:在场景中使用上下文信息是对安全和监视应用程序中的完整语义场景理解的重要帮助。为此,本文提出了一种创新的语义上下文标记算法,用于权衡质量和实时执行这三个上下文类别。我们的系统包括三个连续的阶段:图像分割,基于区域的特征提取和分类。我们提出了结合使用HSV空间中的特征颜色,Gabor滤镜的纹理和空间上下文,并结合方向最近邻(DNN)方法来构造用于分割的无向图。与最近的文献相比,这种组合的速度提高了35倍以上,覆盖率提高了65%。

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