Intelligent balloon: a subdivision-based deformable model for surface reconstruction of arbitrary topology

Y. Duan, Hong Qin
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引用次数: 22

Abstract

In this paper, we develop a novel subdivision-based model—Intelligent Balloon—which is capable of recovering arbitrary, complicated shape geometry as well as its unknown topology simultaneously. Our Intelligent Balloon is a parameterized subdivision surface whose geometry and its deformable behaviors are governed by the principle of energy minimization. Our algorithm starts from a simple seed model (of genus zero) that can be arbitrarily initiated by users within regions of interest. The growing behavior of our model is controlled by a locally defined objective function associated with each vertex. Through the numerical integration of function optimization, our algorithm can adaptively subdivide the model geometry, automatically detect self-collision of the model, properly modify its topology (because of the occurrence of self-collision), correctly evolve the model towards the region boundary and reduce fitting error and improve fitting quality via global subdivision. Commonly used mesh optimization techniques are employed throughout the geometric deformation and topological variation in order to ensure the model both locally smooth and globally well conditioned. We have applied our topologically flexible models to such applications as reverse engineering from range data and surface reconstruction from volumetric image data. Our new models prove to be very powerful and extremely useful for boundary representation of complicated solids of arbitrary topology, shape recovery and segmentation for medical imaging, and iso-surface extraction for visualization.
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智能气球:一种基于细分的任意拓扑曲面重构变形模型
在本文中,我们开发了一种新的基于细分的模型——智能气球,它能够同时恢复任意、复杂的几何形状及其未知的拓扑结构。我们的智能气球是一个参数化的细分表面,其几何形状和变形行为由能量最小化原则控制。我们的算法从一个简单的种子模型(属零)开始,该模型可以由用户在感兴趣的区域内任意启动。模型的增长行为由与每个顶点相关的局部定义目标函数控制。通过函数优化的数值积分,我们的算法可以自适应细分模型几何,自动检测模型的自碰撞,适当修改其拓扑(因为自碰撞的发生),正确地向区域边界演化模型,并通过全局细分减少拟合误差,提高拟合质量。在整个几何变形和拓扑变化过程中采用常用的网格优化技术,以保证模型的局部光滑和全局条件良好。我们已经将拓扑灵活的模型应用于从距离数据进行逆向工程和从体积图像数据进行表面重建等应用中。我们的新模型对于任意拓扑的复杂固体的边界表示、医学成像的形状恢复和分割以及可视化的等面提取非常有用。
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