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Image contextual representation and matching through hierarchies and higher order graphs

机译:通过层次结构和更高阶图匹配图像上下文表示和匹配

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We present a region matching algorithm which establishes correspondences between regions from two segmented images. An abstract graph-based representation conceals the image in a hierarchical graph, exploiting the scene properties at two levels. First, the similarity and spatial consistency of the image semantic objects is encoded in a graph of commute times. Second, the cluttered regions of the semantic objects are represented with a shape descriptor. Many-to-many matching of regions is specially challenging due to the instability of the segmentation under slight image changes, and we explicitly handle it through high order potentials. We demonstrate the matching approach applied to images of world famous buildings, captured under different conditions, showing the robustness of our method to large variations in illumination and viewpoint.
机译:我们提出了一种区域匹配算法,该算法在两个分段图像之间建立了区域之间的对应关系。 基于图形的基于图形的表示隐藏了分层图中的图像,从而利用两个级别的场景属性。 首先,在通勤时间的图表中编码图像语义对象的相似性和空间一致性。 其次,语义对象的杂乱区域用形状描述符表示。 由于在轻微的图像变化下的细分的不稳定,多对多地区的地区匹配是特别挑战,我们通过高阶潜力明确处理它。 我们展示了在不同条件下捕获的世界着名建筑图像的匹配方法,展示了我们对照明和观点的大变化的鲁棒性。

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