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Perceptually-Based Depth-Ordering Enhancement for Direct Volume Rendering

机译:用于直接体积渲染的基于感知的深度顺序增强

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Visualizing complex volume data usually renders selected parts of the volume semitransparently to see inner structures of the volume or provide a context. This presents a challenge for volume rendering methods to produce images with unambiguous depth-ordering perception. Existing methods use visual cues such as halos and shadows to enhance depth perception. Along with other limitations, these methods introduce redundant information and require additional overhead. This paper presents a new approach to enhancing depth-ordering perception of volume rendered images without using additional visual cues. We set up an energy function based on quantitative perception models to measure the quality of the images in terms of the effectiveness of depth-ordering and transparency perception as well as the faithfulness of the information revealed. Guided by the function, we use a conjugate gradient method to iteratively and judiciously enhance the results. Our method can complement existing systems for enhancing volume rendering results. The experimental results demonstrate the usefulness and effectiveness of our approach.
机译:可视化复杂的体积数据通常会半透明地渲染体积的选定部分,以查看体积的内部结构或提供上下文。这对于体积渲染方法产生具有明确的深度顺序感知的图像提出了挑战。现有的方法使用诸如光晕和阴影之类的视觉提示来增强深度感知。除其他限制外,这些方法还引入了冗余信息,并需要额外的开销。本文提出了一种在不使用其他视觉提示的情况下增强体积渲染图像的深度顺序感知的新方法。我们基于定量感知模型建立了能量函数,以根据深度排序和透明度感知的有效性以及所显示信息的真实性来衡量图像的质量。在该函数的指导下,我们使用共轭梯度法迭代并明智地增强结果。我们的方法可以补充现有系统以增强体绘制效果。实验结果证明了我们方法的有效性和有效性。

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