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Improved techniques for fast sliding thin-slab volume visualization

机译:快速滑动薄板体积可视化的改进技术

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Abstract: High-resolution 3D volumetric images obtained by today's radiologic imaging scanners are rich in detailed diagnostic information. Despite the many visualization techniques available to assess such images, there remains information that is challenging to uncover, such as the location of small structures. Recently, sliding thin-slab (STS) visualization was proposed to improve the visualization of interior structures. These STS techniques and the other existing techniques, involve considerable computation, significant memory, extra processing, and dependence on user specifications. Further, other effective rendering approaches are conceivable using the general STS mechanism. We introduce two fast direct techniques for STS volume visualization. The first, a depth rendering process, produces an unobstructed, high-contrast 3D view of the information within a thin volume of image data. Results are a function of relative planar locations, not individual voxel values. Thus, rendered views accurately depict the internal properties that were initially captured as position and intensity. The second method produces a gradient-like view of the intensity changes in a thin volume. Results can effectively detect the occurrence and location of dramatic tissue variations, often not visually recognized otherwise. Both STS techniques exploit the concept of temporal coherence to form sequences of consecutive slabs, using information from previously computed slabs. This permits rapid real-time computational on a general-purpose computer. Further, these techniques require minimal processing and memory, require no pre-processing, and results are not dependent on user knowledge. Results show the computational efficiency and visual efficacy of these new STS techniques. !27
机译:摘要:当今的放射成像扫描仪获得的高分辨率3D体积图像包含丰富的详细诊断信息。尽管有许多可视化技术可用于评估此类图像,但仍然存在难以发现的信息,例如小型结构的位置。最近,提出了滑动薄板(STS)可视化以改善内部结构的可视化。这些STS技术和其他现有技术涉及大量计算,大量内存,额外处理以及对用户规范的依赖。此外,使用通用的STS机制可以想到其他有效的渲染方法。我们介绍了两种用于STS体积可视化的快速直接技术。首先是深度渲染过程,它会在少量图像数据中生成信息的无障碍,高对比度3D视图。结果是相对平面位置的函数,而不是单个体素值。因此,渲染视图准确地描述了最初作为位置和强度捕获的内部属性。第二种方法在稀薄的体积中产生强度变化的类似梯度的视图。结果可以有效地检测出剧烈的组织变化的发生和位置,否则通常无法通过视觉识别。两种STS技术都使用时间相干性的概念,以使用先前计算的平板信息来形成连续平板的序列。这允许在通用计算机上进行快速实时计算。此外,这些技术需要最少的处理和存储,不需要预处理,并且结果不依赖于用户知识。结果显示了这些新的STS技术的计算效率和视觉效果。 !27

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