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A Comparison of Gradient Estimation Methods for Volume Rendering on Unstructured Meshes

机译:非结构化网格体渲染的梯度估计方法的比较

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This paper presents a study of gradient estimation methods for rendering unstructured-mesh volume data. Gradient estimation is necessary for rendering shaded isosurfaces and specular highlights, which provide important cues for shape and depth. Gradient estimation has been widely studied and deployed for regular-grid volume data to achieve local illumination effects, but has been, otherwise, for unstructured-mesh data. As a result, most of the unstructured-mesh volume visualizations made so far were unlit. In this paper, we present a comprehensive study of gradient estimation methods for unstructured meshes with respect to their cost and performance. Through a number of benchmarks, we discuss the effects of mesh quality and scalar function complexity in the accuracy of the reconstruction, and their impact in lighting-enabled volume rendering. Based on our study, we also propose two heuristic improvements to the gradient reconstruction process. The first heuristic improves the rendering quality with a hybrid algorithm that combines the results of the multiple reconstruction methods, based on the properties of a given mesh. The second heuristic improves the efficiency of its GPU implementation, by restricting the computation of the gradient on a fixed-size local neighborhood.
机译:本文提出了一种用于渲染非结构化网格体数据的梯度估计方法的研究。渐变估计对于渲染着色的等值面和镜面高光是必要的,这为形状和深度提供了重要的提示。已经对梯度估计进行了广泛的研究,并已将其用于常规网格体数据以实现局部照明效果,但对于非结构化网格数据,已进行了梯度估计。结果,到目前为止,大多数非结构化网格体积的可视化效果都是未照明的。在本文中,我们针对非结构化网格的成本和性能进行了全面的梯度估计方法研究。通过许多基准,我们讨论了网格质量和标量函数复杂性对重建精度的影响,以及它们对启用光照的体积渲染的影响。根据我们的研究,我们还提出了对梯度重建过程的两个启发式改进。第一种启发式算法使用混合算法提高了渲染质量,该算法基于给定网格的属性,结合了多种重建方法的结果。第二种启发式方法通过限制固定大小的本地邻域上的梯度计算来提高其GPU实现的效率。

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