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Bayesian winner-take-all reconstruction of intermediate views from stereoscopic images

机译:贝叶斯获胜者从立体图像中获取所有中间视图的重建

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This paper presents a new algorithm for the reconstruction of intermediate views from a pair of still stereoscopic images. The algorithm is designed to address the issue of blur caused by linear filtering often employed in such reconstruction. The proposed algorithm is block-based and to reconstruct the intermediate views employs nonlinear disparity-compensated filtering by means of a winner-take-all strategy. The reconstructed image is modeled as a tiling by fixed-size blocks coming from various positions (disparity compensation) of either the left or right images, while the tiling map itself is modeled by a binary decision field. In addition to that, an observation model relating the left and right images via a disparity field, and a disparity field model are used. All models are probabilistic and are combined into a maximum a posteriori probability criterion. The intermediate intensities, disparities and the binary decision field are estimated jointly using the expectation-maximization algorithm. The new approach is compared experimentally on complex natural images with a reference block-based algorithm employing linear filtering. Although the improvements are localized and often subtle, they demonstrate that a high-quality intermediate view reconstruction for complex scenes is feasible.
机译:本文提出了一种从一对静止立体图像中重建中间视图的新算法。该算法旨在解决通常在此类重建中采用的线性滤波引起的模糊问题。所提出的算法是基于块的,并且通过赢家通吃策略,采用非线性视差补偿滤波来重构中间视图。重建的图像通过来自左侧或右侧图像各个位置(视差补偿)的固定大小的块建模为平铺,而平铺图本身则由二进制决策字段建模。除此之外,还使用经由视差场将左右图像相关联的观察模型和视差场模型。所有模型都是概率模型,并组合为最大后验概率准则。使用期望最大化算法共同估计中间强度,视差和二进制决策字段。该新方法在复杂自然图像上与采用线性滤波的基于参考块的算法进行了实验比较。尽管这些改进是局部的并且通常是微妙的,但它们表明针对复杂场景进行高质量的中间视图重建是可行的。

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