A magnification lens for interactive volume visualization

E. LaMar, B. Hamann, K. Joy
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引用次数: 85

Abstract

Volume visualization of large data sets suffers from the same problem that many other visualization modalities suffer from: either one can visualize the entire data set and lose small details or visualize a small region and lose the context. The authors we present a magnification lens technique for volume visualization. While the notion of a magnification-lens is not new, and other techniques attempt to simulate the physical properties of a magnifying lens, our contribution is in developing a magnification lens that is fast, can be implemented using a fairly small software overhead, and has a natural, intuitive appearance. The issue with magnification lens is the border, or transition region. The lens center and exterior have a constant zoom factor, and are simple to render. It is the border region that blends between the external and interior magnification, and has a nonconstant magnification. We use the "perspective-correct textures" capability, available in most current graphics systems, to produce a lens with a tessellated border region that approximates linear compression with respect to the radius of the magnification lens. We discuss how a "cubic" border can mitigate the discontinuities resulting from the use of a linear function, without significant performance loss. We discuss various issues concerning development of a three-dimensional magnification lens.
用于交互式体积可视化的放大镜
大型数据集的体可视化面临着许多其他可视化方式同样的问题:要么可视化整个数据集而丢失小细节,要么可视化小区域而丢失上下文。我们提出了一种体积可视化的放大透镜技术。虽然放大镜的概念并不新鲜,其他技术也试图模拟放大镜的物理特性,但我们的贡献是开发一种快速的放大镜,可以使用相当小的软件开销来实现,并且具有自然,直观的外观。放大镜的问题是边界,或过渡区域。镜头中心和外部有一个恒定的变焦系数,并且很容易渲染。它是混合了外部和内部放大倍率的边界区域,具有非恒定的放大倍率。我们使用当前大多数图形系统中可用的“透视正确纹理”功能来生成具有镶嵌边界区域的透镜,该区域近似于放大透镜半径的线性压缩。我们讨论了“立方”边界如何减轻由于使用线性函数而导致的不连续,而不会造成显著的性能损失。我们讨论了有关三维放大镜发展的各种问题。
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