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Error Analysis for Image-Based Rendering With Depth Information

机译:具有深度信息的基于图像的渲染的误差分析

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We propose a new approach to quantitatively analyze the rendering quality of image-based rendering (IBR) algorithms with depth information. The resulting error bounds for synthesized views depend on IBR configurations including the depth and intensity estimate errors, the scene geometry and texture, the number of actual cameras, their positions and resolution. Specifically, the IBR error is bounded by the summation of three terms, highlighting the impact of using multiple actual cameras, the impact of the noise level at the actual cameras, and the impact of the depth accuracy. We also quantify the impact of occlusions and intensity discontinuities. The proposed methodology is applicable to a large class of common IBR algorithms and can be applied locally. Experiments with synthetic and real scenes show that the developed error bounds accurately characterize the rendering errors. In particular, the error bounds correctly characterize the decay rates of synthesized views' mean absolute errors as $ {cal O}(lambda ^{-1})$ and $ {cal O}(lambda ^{-2})$, where $lambda $ is the local density of actual samples, for 2-D and 3-D scenes, respectively. Finally, we discuss the implications of the proposed analysis on camera placement, budget allocation, and bit allocation.
机译:我们提出了一种新的方法来定量分析具有深度信息的基于图像的渲染(IBR)算法的渲染质量。合成视图的最终误差范围取决于IBR配置,包括深度和强度估计误差,场景几何形状和纹理,实际摄像机的数量,它们的位置和分辨率。具体而言,IBR错误受三个项之和​​的限制,突出显示了使用多个实际摄像机的影响,实际摄像机处的噪声水平的影响以及深度精度的影响。我们还量化了遮挡和强度不连续的影响。所提出的方法适用于一大类常见的IBR算法,并且可以在本地应用。通过合成场景和真实场景进行的实验表明,所开发的误差范围可以准确地表征渲染误差。特别是,误差范围正确地将合成视图的平均绝对误差的衰减率表征为$ {cal O}(lambda ^ {-1})$和$ {cal O}(lambda ^ {-2})$,其中$ lambda $是分别用于2-D和3-D场景的实际样本的局部密度。最后,我们讨论了建议的分析方法对相机放置,预算分配和位分配的影响。

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