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Volume Ray Casting with Peak Finding and Differential Sampling

机译:具有峰发现和差分采样的体射线投射

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Direct volume rendering and isosurfacing are ubiquitous rendering techniques in scientific visualization, commonly employed in imaging 3D data from simulation and scan sources. Conventionally, these methods have been treated as separate modalities, necessitating different sampling strategies and rendering algorithms. In reality, an isosurface is a special case of a transfer function, namely a Dirac impulse at a given isovalue. However, ar tifact-free rendering of discrete isosurfaces in a volume rendering framework is an elusive goal, requiring either infinite sampling or smoothing of the transfer function. While preintegration approaches solve the most obvious deficiencies in handling shar p transfer functions, ar tifacts can still result, limiting classification. In this paper, we introduce a method for rendering such features by explicitly solving for isovalues within the volume rendering integral. In addition, we present a sampling strategy inspired by ray differentials that automatically matches the frequency of the image plane, resulting in fewer ar tifacts near the eye and better overall performance. These techniques exhibit clear advantages over standard uniform ray casting with and without preintegration, and allow for high-quality interactive volume rendering with shar p C0 transfer functions.
机译:直接体积渲染和等值曲面化是科学可视化中无处不在的渲染技术,通常用于对来自仿真和扫描源的3D数据进行成像。按照惯例,这些方法已被视为单独的模式,因此需要不同的采样策略和渲染算法。实际上,等值面是传递函数的特殊情况,即给定等值处的狄拉克脉冲。但是,在体积渲染框架中对分体等值面进行无条件的渲染是一个遥不可及的目标,需要无限采样或平滑传递函数。尽管预集成方法解决了处理快速传递函数时最明显的缺陷,但仍会产生伪装,限制了分类。在本文中,我们介绍了一种通过显式求解体积渲染积分中的等值值来渲染此类特征的方法。此外,我们提出了一种受光线差异启发的采样策略,该策略可以自动匹配像平面的频率,从而减少眼睛附近的物镜,并提高整体性能。这些技术相对于使用和不使用预集成的标准均匀光线投射具有明显的优势,并允许使用shar p C0传递函数进行高质量的交互式体绘制。

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