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Multi-Scale Procedural Animations of Microtubule Dynamics Based on Measured Data

机译:基于实测数据的微管动力学多尺度程序动画

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Biologists often use computer graphics to visualize structures, which due to physical limitations are not possible to image with a microscope. One example for such structures are microtubules, which are present in every eukaryotic cell. They are part of the cytoskeleton maintaining the shape of the cell and playing a key role in the cell division. In this paper, we propose a scientifically-accurate multi-scale procedural model of microtubule dynamics as a novel application scenario for procedural animation, which can generate visualizations of their overall shape, molecular structure, as well as animations of the dynamic behaviour of their growth and disassembly. The model is spanning from tens of micrometers down to atomic resolution. All the aspects of the model are driven by scientific data. The advantage over a traditional, manual animation approach is that when the underlying data change, for instance due to new evidence, the model can be recreated immediately. The procedural animation concept is presented in its generic form, with several novel extensions, facilitating an easy translation to other domains with emergent multi-scale behavior.
机译:生物学家经常使用计算机图形来可视化结构,由于物理限制,无法用显微镜成像。这种结构的一个例子是微管,它存在于每个真核细胞中。它们是维持细胞形状并在细胞分裂中起关键作用的细胞骨架的一部分。在本文中,我们提出了一种微管动力学的科学精确的多尺度程序模型,作为程序动画的一种新型应用场景,它可以生成其整体形状,分子结构以及其生长动态行为的动画的可视化图像和拆卸。该模型的范围从几十微米到原子分辨率。该模型的所有方面均由科学数据驱动。与传统的手动动画方法相比,其优势在于,当基础数据发生更改(例如由于新证据)时,可以立即重新创建模型。程序动画概念以其通用形式提出,并进行了一些新颖的扩展,从而可以轻松地转换为具有新兴多尺度行为的其他领域。

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