基于统计传递函数空间的体可视化

M. Haidacher, Daniel Patel, S. Bruckner, A. Kanitsar, E. Gröller
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引用次数: 62

摘要

噪声数据的传递函数设计是一项艰巨的任务。在传统的传递函数空间中,不同材料的数据值重叠。本文介绍了一种新的统计传递函数空间,该空间在噪声存在的情况下,可以分离体数据集中的不同材料。我们的方法自适应地估计每个样本点附近数据值的统计性质,即平均值和标准差。这些性质被用来定义一个传递函数空间,使不同材料的区别。此外,我们提出了一种与我们的新传递函数空间交互的新方法,该方法可以基于统计性质设计传递函数。此外,我们证明了统计信息可以应用于渲染过程中增强视觉外观。我们将新方法与1D、2D和LH传递函数进行比较,以证明其有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Volume visualization based on statistical transfer-function spaces
It is a difficult task to design transfer functions for noisy data. In traditional transfer-function spaces, data values of different materials overlap. In this paper we introduce a novel statistical transfer-function space which in the presence of noise, separates different materials in volume data sets. Our method adaptively estimates statistical properties, i.e. the mean value and the standard deviation, of the data values in the neighborhood of each sample point. These properties are used to define a transfer-function space which enables the distinction of different materials. Additionally, we present a novel approach for interacting with our new transfer-function space which enables the design of transfer functions based on statistical properties. Furthermore, we demonstrate that statistical information can be applied to enhance visual appearance in the rendering process. We compare the new method with 1D, 2D, and LH transfer functions to demonstrate its usefulness.
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