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首页> 外文期刊>International Journal Of Modelling & Simulation >ADAPTIVE MULTI-VALUED VOLUME DATA VISUALIZATION USING DATA-DEPENDENT ERROR METRICS
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ADAPTIVE MULTI-VALUED VOLUME DATA VISUALIZATION USING DATA-DEPENDENT ERROR METRICS

机译:使用与数据有关的误差度量的自适应多值体积数据可视化

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摘要

Adaptive, and especially view-dependent, volume visualization is used to display large-volume data at interactive frame rates preserving high visual quality in specified or implied regions of importance. In typical approaches, the error metrics and refinement oracles used for view-dependent rendering are based on viewing parameters only. The approach presented in this article considers viewing parameters and parameters for data exploration such as isovalues, velocity field magnitude, gradient magnitude, curl, or divergence. Error metrics are described for scalar fields, vector fields, and more general multivalued combinations of scalar and vector field data. The amount of data being considered in these combinations is not limited by the error metric, but the ability to use them to create meaningful visualizations. Our framework supports the application of visualization methods such as isosurface extraction to adaptively refined meshes. For multivalued data exploration purposes, we combine extracted mapping with color information and/or streamlines mapped onto an isosurface. Such a combined visualization seems advantageous, as scalar and vector field quantities can be combined visually in a highly expressive manner.
机译:自适应的(尤其是依赖于视图的)体积可视化用于以交互帧速率显示大容量数据,从而在指定的或隐含的重要区域中保持较高的视觉质量。在典型方法中,用于依赖视图的渲染的错误指标和细化预告片仅基于视图参数。本文介绍的方法考虑了查看参数和用于数据探索的参数,例如等值,速度场大小,梯度大小,卷曲或发散。描述了标量字段,矢量字段以及标量和矢量字段数据的更一般的多值组合的错误度量。这些组合中考虑的数据量不受错误度量标准的限制,但具有使用它们创建有意义的可视化效果的能力。我们的框架支持将可视化方法(例如等值面提取)应用于自适应精炼的网格。为了进行多值数据探索,我们将提取的映射与颜色信息和/或映射到等值面的流线相结合。这样的组合可视化看起来是有利的,因为标量和矢量场量可以以高度表达的方式在视觉上组合。

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