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首页> 外文期刊>Visualization and Computer Graphics, IEEE Transactions on >Monocular 3D Reconstruction and Augmentation of Elastic Surfaces with Self-Occlusion Handling
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Monocular 3D Reconstruction and Augmentation of Elastic Surfaces with Self-Occlusion Handling

机译:自闭塞处理弹性表面的单眼3D重建和增强

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This paper focuses on the 3D shape recovery and augmented reality on elastic objects with self-occlusions handling, using only single view images. Shape recovery from a monocular video sequence is an underconstrained problem and many approaches have been proposed to enforce constraints and resolve the ambiguities. State-of-the art solutions enforce smoothness or geometric constraints, consider specific deformation properties such as inextensibility or resort to shading constraints. However, few of them can handle properly large elastic deformations. We propose in this paper a real-time method that uses a mechanical model and able to handle highly elastic objects. The problem is formulated as an energy minimization problem accounting for a non-linear elastic model constrained by external image points acquired from a monocular camera. This method prevents us from formulating restrictive assumptions and specific constraint terms in the minimization. In addition, we propose to handle self-occluded regions thanks to the ability of mechanical models to provide appropriate predictions of the shape. Our method is compared to existing techniques with experiments conducted on computer-generated and real data that show the effectiveness of recovering and augmenting 3D elastic objects. Additionally, experiments in the context of minimally invasive liver surgery are also provided and results on deformations with the presence of self-occlusions are exposed.
机译:本文仅使用单一视图图像,着重介绍具有自遮挡处理功能的弹性对象的3D形状恢复和增强现实。从单眼视频序列中恢复形状是一个约束不足的问题,并且已经提出了许多方法来强制执行约束并解决歧义。最先进的解决方案会强制执行平滑度或几何约束,请考虑特定的变形属性(例如不可扩展性)或采用阴影约束。但是,它们中很少能处理适当的大弹性变形。我们在本文中提出了一种实时的方法,该方法使用机械模型并能够处理高弹性物体。该问题被公式化为能量最小化问题,考虑到非线性弹性模型,该非线性弹性模型受到从单眼相机获取的外部像点的约束。这种方法阻止我们在最小化中制定限制性假设和特定约束项。此外,由于机械模型能够提供适当的形状预测能力,我们建议处理自封闭区域。我们的方法与现有技术进行了比较,并在计算机生成的真实数据上进行了实验,这些实验显示了恢复和增强3D弹性对象的有效性。此外,还提供了在微创肝脏手术中进行的实验,并揭示了因自闭塞而导致的变形的结果。

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