首页> 外文期刊>The Journal of Thoracic and Cardiovascular Surgery >Computer-generated three-dimensional animation of the mitral valve.
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Computer-generated three-dimensional animation of the mitral valve.

机译:二尖瓣的计算机生成的三维动画。

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OBJECTIVE: Three-dimensional motion-capture data offer insight into the mechanical differences of mitral valve function in pathologic states. Although this technique is precise, the resulting time-varying data sets can be both difficult to interpret and visualize. We used a new technique to transform these 3-dimensional ovine numeric analyses into an animated human model of the mitral apparatus that can be deformed into various pathologic states. METHODS: In vivo, high-speed, biplane cinefluoroscopic images of tagged ovine mitral apparatus were previously analyzed under normal and pathologic conditions. These studies produced serial 3-dimensional coordinates. By using commercial animation and custom software, animated 3-dimensional models were constructed of the mitral annulus, leaflets, and subvalvular apparatus. The motion data were overlaid onto a detailed model of the human heart, resulting in a dynamic reconstruction. RESULTS: Numeric motion-capture data were successfully converted into animated 3-dimensional models of the mitral valve. Structures of interest can be isolated by eliminating adjacent anatomy. The normal and pathophysiologic dynamics of the mitral valve complex can be viewed from any perspective. CONCLUSION: This technique provides easy and understandable visualization of the complex and time-varying motion of the mitral apparatus. This technology creates a valuable research and teaching tool for the conceptualization of mitral valve dysfunction and the principles of repair.
机译:目的:三维运动捕获数据可洞察病理状态下二尖瓣功能的机械差异。尽管此技术很精确,但所得的时变数据集可能难以解释和可视化。我们使用了一项新技术,将这些3维绵羊数字分析转换为可以变形为各种病理状态的二尖瓣装置的动画人体模型。方法:事先在正常和病理条件下分析了标记的绵羊二尖瓣装置的体内高速双平面电影透视图像。这些研究产生了连续的三维坐标。通过使用商业动画和定制软件,构建了由二尖瓣环,小叶和瓣膜下装置组成的动画三维模型。运动数据叠加到人心脏的详细模型上,从而实现动态重建。结果:数字运动捕获数据已成功转换为二尖瓣的动画三维模型。感兴趣的结构可以通过消除邻近的解剖结构来隔离。可以从任何角度查看二尖瓣复合体的正常和病理生理动力学。结论:该技术为二尖瓣装置复杂且随时间变化的运动提供了易于理解的可视化。该技术为二尖瓣功能障碍和修复原理的概念化创造了有价值的研究和教学工具。

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