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A bag of words approach for semantic segmentation of monitored scenes

机译:用于监视场景语义分割的词袋方法

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This paper proposes a semantic segmentation method for outdoor scenes captured by a surveillance camera. Our algorithm classifies each perceptually homogenous region as one of the predefined classes learned from a collection of manually labelled images. The proposed approach combines two different types of information. First, color segmentation is performed to divide the scene into perceptually similar regions. Then, the second step is based on SIFT keypoints and uses the bag of words representation of the regions for the classification. The prediction is done using a Naive Bayesian Network as a generative classifier. Compared to existing techniques, our method provides more compact representations of scene contents and the segmentation result is more consistent with human perception due to the combination of the color information with the image keypoints. The experiments conducted on a publicly available data set demonstrate the validity of the proposed method.
机译:针对监控摄像机捕获的室外场景,提出了一种语义分割方法。我们的算法将每个感知同质区域分类为从手动标记图像集合中获悉的预定义类别之一。所提出的方法结合了两种不同类型的信息。首先,执行颜色分割以将场景划分为在感觉上相似的区域。然后,第二步基于SIFT关键点,并使用区域的单词袋表示进行分类。使用朴素贝叶斯网络作为生成分类器进行预测。与现有技术相比,由于颜色信息与图像关键点的结合,我们的方法提供了更紧凑的场景内容表示,并且分割结果与人的感知更加一致。在公开数据集上进行的实验证明了该方法的有效性。

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