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Retrieval of objects in video by similarity based on graph matching

机译:基于图匹配的相似度检索视频中的对象

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In this paper, we tackle the problem of matching of objects in video in the context of the rough indexing paradigm. The approach developed is based on matching of region adjacency graphs (RAG) of pre-segmented objects. In the context of the rough indexing paradigm, the video data are of very low resolution and segmentation is consequently inaccurate. Hence the RAGs vary with the time. The contribution of this paper is a graph matching method for such RAGs based on an improvement of relaxation labelling techniques. In this method, adjustments of similarity between regions according to neighborhood consistency compensate for the inaccuracy of segmentation. The approach demonstrates promising performance on real sequences when compared to another region-based technique.
机译:在本文中,我们在粗糙索引范式的背景下解决了视频中对象的匹配问题。所开发的方法基于预分段对象的区域邻接图(RAG)的匹配。在粗略索引范例的情况下,视频数据的分辨率非常低,因此分割不准确。因此,RAG随时间变化。本文的贡献是基于松弛标记技术的改进的这种RAG的图匹配方法。在这种方法中,根据邻域一致性对区域之间的相似性进行调整可补偿分割的不准确性。与另一种基于区域的技术相比,该方法证明了在真实序列上有希望的性能。

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