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Recursive orientation estimation based on hypersurface reconstruction

机译:基于超曲面重构的递归方向估计

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Estimating the local orientations of a directional structure may prove to be complicated especially for complex geometries for which conventional methods, including those based on the gradient, are unsuitable. In this paper, we propose a recursive method of orientation estimation based on the reconstruction of hypersurfaces and the definition of a model of the structure in these so-called complex areas. The estimation proves to be more accurate when executed on the flattened data and driven to the initial referential. This process recursively leads to a more accurate orientation field estimation. When applied to synthetic data, the method reduces significantly the estimation bias. For real directional textures, the resulting orientation field coincides better with the perceptual orientation of the directional structures.
机译:估计定向结构的局部取向可能会变得很复杂,尤其是对于复杂的几何形状而言,常规方法(包括基于梯度的方法)不适合于此。在本文中,我们提出了一种基于超曲面重建的递归方向估计方法,并在这些所谓的复杂区域中定义了结构模型。当对扁平化数据执行并驱动到初始参考时,估计证明更为准确。该过程递归地导致更准确的取向场估计。当应用于合成数据时,该方法显着降低了估计偏差。对于真实的方向纹理,生成的方向场与方向结构的感知方向更好地重合。

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