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Local surface shape estimation of 3-D textured surfaces using Gaussian Markov random fields and stereo windows

机译:使用高斯马尔可夫随机场和立体窗估计3D纹理表面的局部表面形状

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The problem of extracting the local shape information of a 3-D texture surface from a single 2-D image by tracking the perceived systematic deformations the texture undergoes by virtue of being present on a 3-D surface and by virtue of being imaged is examined. The surfaces of interest are planar and developable surfaces. The textured objects are viewed as originating by laying a rubber planar sheet with a homogeneous parent texture on it onto the objects. The homogeneous planar parent texture is modeled by a stationary Gaussian Markov random field (GMRF). A probability distribution function for the texture data obtained by projecting the planar parent texture under a linear camera model is derived, which is an explicit function of the parent GMRF parameters, the surface shape parameters. and the camera geometry. The surface shape parameter estimation is posed as a maximum likelihood estimation problem. A stereo-windows concept is introduced to obtain a unique and consistent parent texture from the image data that, under appropriate transformations, yields the observed texture in the image. The theory is substantiated by experiments on synthesized as well as real images of textured surfaces.
机译:研究了通过跟踪纹理由于存在于3D表面上并通过成像而经历的感知的系统变形来从单个2D图像中提取3D纹理表面的局部形状信息的问题。 。感兴趣的表面是平坦且可显影的表面。通过在对象上放置具有均质母体纹理的橡胶平面片,可以将纹理对象视为起源。均质的平面母体纹理由静止的高斯马尔可夫随机场(GMRF)建模。推导通过在线性相机模型下投影平面父纹理获得的纹理数据的概率分布函数,该函数是父GMRF参数(表面形状参数)的显式函数。和相机的几何形状。表面形状参数估计被认为是最大似然估计问题。引入了立体窗口概念,以从图像数据中获得唯一且一致的父纹理,并在适当的转换后产生图像中观察到的纹理。该理论通过对纹理表面的合成图像和真实图像进行实验得到证实。

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