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A More Robust Feature Correspondence for more Accurate Image Recognition

机译:更强大的功能对应功能,可实现更准确的图像识别

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In this paper, a novel algorithm for finding the optimal correspondence between two sets of image features has been introduced. The proposed algorithm pays attention not only to the similarity between features but also to the spatial layout of every matched feature and its neighbors. Unlike related methods that use geometrical relations between the neighboring features, the proposed method employees topology that survives against different types of deformations like scaling and rotation, resulting in more robust matching. The features are expressed as an undirected graph where every node represents a local feature and every edge represents adjacency between them. The topology of the resulting graph can be considered as a robust global feature of the represented object. The matching process is modeled as a graph matching problem, which in turn is formulated as a variation of the quadratic assignment problem. In this variation, a number of parameters are used to control the significance of global vs. local features to tune the performance and customize the model. The experimental results show a significant improvement in the number of correct matches using the proposed method compared to different methods.
机译:在本文中,介绍了一种用于寻找两组图像特征之间最佳对应关系的新颖算法。所提出的算法不仅关注特征之间的相似性,而且关注每个匹配特征及其邻居的空间布局。与使用相邻要素之间的几何关系的相关方法不同,所提出的方法采用雇员拓扑结构,可以抵抗不同类型的变形(例如缩放和旋转),从而实现更可靠的匹配。这些特征表示为无向图,其中每个节点代表一个局部特征,每个边代表它们之间的邻接。结果图的拓扑可以视为所表示对象的鲁棒全局特征。匹配过程被建模为图匹配问题,而图匹配问题又被表述为二次分配问题的变体。在此变体中,许多参数用于控制全局特征与局部特征的重要性,以调整性能并自定义模型。实验结果表明,与不同方法相比,使用该方法可以显着改善正确匹配的数量。

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