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Steered mixture-of-experts for light field coding, depth estimation, and processing

机译:专家级混合专家,可进行光场编码,深度估计和处理

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The proposed framework, called Steered Mixture-of-Experts (SMoE), enables a multitude of processing tasks on light fields using a single unified Bayesian model. The underlying assumption is that light field rays are instantiations of a non-linear or non-stationary random process that can be modeled by piecewise stationary processes in the spatial domain. As such, it is modeled as a space-continuous Gaussian Mixture Model. Consequently, the model takes into account different regions of the scene, their edges, and their development along the spatial and disparity dimensions. Applications presented include light field coding, depth estimation, edge detection, segmentation, and view interpolation. The representation is compact, which allows for very efficient compression yielding state-of-the-art coding results for low bit-rates. Furthermore, due to the statistical representation, a vast amount of information can be queried from the model even without having to analyze the pixel values. This allows for “blind” light field processing and classification.
机译:所提出的框架,称为专家混合物(Smoe),可以使用单一统一贝叶斯模型在光场上进行多种处理任务。潜在的假设是光场射线是非线性或非稳定性随机过程的实例化,其可以通过空间域中的分段静止过程建模。因此,它被建模为空间连续高斯混合模型。因此,该模型考虑了场景的不同区域,它们的边缘以及它们沿着空间和视差尺寸的发展。所提出的应用包括光场编码,深度估计,边缘检测,分段和视图插值。表示是紧凑的,其允许非常有效的压缩,从而产生低比特率的最先进的编码结果。此外,由于统计表示,即使不必分析像素值,也可以从模型中查询大量信息。这允许“盲目”光场处理和分类。

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