Adaptive image space shading for motion and defocus blur

K. Vaidyanathan, Róbert Tóth, Marco Salvi, S. Boulos, A. Lefohn
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引用次数: 20

Abstract

We present a novel anisotropic sampling algorithm for image space shading which builds upon recent advancements in decoupled sampling for stochastic rasterization pipelines. First, we analyze the frequency content of a pixel in the presence of motion and defocus blur. We use this analysis to derive bounds for the spectrum of a surface defined over a two-dimensional and motion-aligned shading space. Second, we present a simple algorithm that uses the new frequency bounds to reduce the number of shaded quads and the size of decoupling cache respectively by 2X and 16X, while largely preserving image detail and minimizing additional aliasing.
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自适应图像空间阴影运动和散焦模糊
我们提出了一种新的各向异性采样算法用于图像空间着色,该算法建立在随机光栅化管道的解耦采样的最新进展之上。首先,我们分析了存在运动和散焦模糊的像素的频率内容。我们使用此分析来推导在二维和运动对齐的阴影空间上定义的表面光谱的界限。其次,我们提出了一种简单的算法,该算法使用新的频率边界将阴影四边形的数量和解耦缓存的大小分别减少了2倍和16倍,同时在很大程度上保留了图像细节并最小化了额外的混叠。
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