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Modular linear iconic matching using higher order graphs

机译:使用高阶图的模块化线性图标匹配

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We introduce a novel approach to tackle iconic linear mapping between two images. We adopt a grid-based parametrization of the deformation field that is encoded by a higher order graphical model. In the proposed formulation, latent variables correspond to local grid displacement vectors and unary potentials locally quantify the level of alignment between the two images. Higher order constraints that involve third and forth order potentials, enforce the linearity of the resulting transformation. The resulting formulation is modular with respect to the image metric used to evaluate the correctness of mapping as well as with respect to the nature of the linear transformation (rigid, similarity, or affine). Inference on this graph is performed through dual decomposition. Comparison with classic algorithms demonstrates the potential of our approach.
机译:我们介绍了一种新颖的方法来解决两个图像之间的标志性线性映射。我们采用变形场的基于网格的参数化,该参数化由更高阶的图形模型编码。在提出的公式中,潜在变量对应于局部网格位移矢量,一元电势局部地量化了两个图像之间的对齐水平。涉及三阶和四阶电势的高阶约束会增强所得变换的线性度。相对于用于评估映射正确性的图像度量以及线性变换的性质(刚性,相似性或仿射性),生成的公式是模块化的。通过双重分解对此图进行推断。与经典算法的比较证明了我们方法的潜力。

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