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Correlated Photon Mapping for Interactive Global Illumination of Time-Varying Volumetric Data

机译:相关光子映射用于时变体积数据的交互式全局照明

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摘要

We present a method for interactive global illumination of both static and time-varying volumetric data based on reduction of the overhead associated with re-computation of photon maps. Our method uses the identification of photon traces invariant to changes of visual parameters such as the transfer function (TF), or data changes between time-steps in a 4D volume. This lets us operate on a variant subset of the entire photon distribution. The amount of computation required in the two stages of the photon mapping process, namely tracing and gathering, can thus be reduced to the subset that are affected by a data or visual parameter change. We rely on two different types of information from the original data to identify the regions that have changed. A low resolution uniform grid containing the minimum and maximum data values of the original data is derived for each time step. Similarly, for two consecutive time-steps, a low resolution grid containing the difference between the overlapping data is used. We show that this compact metadata can be combined with the transfer function to identify the regions that have changed. Each photon traverses the low-resolution grid to identify if it can be directly transferred to the next photon distribution state or if it needs to be recomputed. An efficient representation of the photon distribution is presented leading to an order of magnitude improved performance of the raycasting step. The utility of the method is demonstrated in several examples that show visual fidelity, as well as performance. The examples show that visual quality can be retained when the fraction of retraced photons is as low as 40%-50%.
机译:我们提出了一种基于减少与光子图重新计算相关的开销的静态和时变体数据的交互式全局照明方法。我们的方法使用光子迹线的识别不随视觉参数(例如传递函数(TF))的变化或4D体积中时间步长之间的数据变化而变化。这使我们可以对整个光子分布的变体子集进行操作。因此,在光子映射过程的两个阶段(即跟踪和收集)中需要的计算量可以减少到受数据或视觉参数更改影响的子集。我们依靠原始数据中的两种不同类型的信息来识别已更改的区域。对于每个时间步,将导出一个包含原始数据的最小和最大数据值的低分辨率统一网格。类似地,对于两个连续的时间步长,使用包含重叠数据之间差异的低分辨率网格。我们证明了这种紧凑的元数据可以与传递函数结合使用,以识别发生变化的区域。每个光子遍历低分辨率网格,以确定是否可以将其直接转移到下一个光子分布状态,或者是否需要重新计算。提出了光子分布的有效表示,从而使光线投射步骤的性能提高了一个数量级。在几个显示视觉保真度和性能的示例中证明了该方法的实用性。这些示例表明,当回溯光子的比例低至40%-50%时,可以保留视觉质量。

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