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P-RPF: Pixel-Based Random Parameter Filtering for Monte Carlo Rendering

机译:P-RPF:蒙特卡洛渲染的基于像素的随机参数过滤

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In this paper we propose Pixel-based Random Parameter Filtering (P-RPF) for efficiently denoising images generated from complex illuminations with a high sample count. We design various operations of our method to have time complexity that is independent from the number of samples per pixel. We compute feature weights by measuring the functional relationships between MC inputs and output in a sample basis. To accelerate this sample-basis process we propose to use an up sampling method for feature weights. We have applied our method to a wide variety of models with different rendering effects. Our method runs significantly faster than the original RPF, while maintaining visually pleasing and numerically similar results. As a result, our method shows more visually pleasing and numerically better results than RPF in an equal-time comparison.
机译:在本文中,我们提出了基于像素的随机参数滤波(P-RPF),以有效地对从具有高采样数的复杂照明产生的图像进行降噪。我们设计方法的各种操作,使其时间复杂度与每个像素的样本数量无关。我们通过以样本为基础测量MC输入和输出之间的功能关系来计算特征权重。为了加快此基于样本的过程,我们建议对特征权重使用上采样方法。我们已将我们的方法应用于具有不同渲染效果的各种模型。我们的方法比原始RPF的运行速度快得多,同时保持了视觉效果和数值上相似的结果。结果,在等时比较中,我们的方法比RPF在视觉上更令人愉悦,并且在数值上更好。

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