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Realistic Procedural Plant Modeling from Multiple View Images

机译:从多视图图像建模的现实程序植物建模

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摘要

In this paper, we describe a novel procedural modeling technique for generating realistic plant models from multi-view photographs. The realism is enhanced via visual and spatial information acquired from images. In contrast to previous approaches that heavily rely on user interaction to segment plants or recover branches in images, our method automatically estimates an accurate depth map of each image and extracts a 3D dense point cloud by exploiting an efficient stereophotogrammetry approach. Taking this point cloud as a soft constraint, we fit a parametric plant representation to simulate the plant growth progress. In this way, we are able to synthesize parametric plant models from real data provided by photos and 3D point clouds. We demonstrate the robustness of the proposed approach by modeling various plants with complex branching structures and significant self-occlusions. We also demonstrate that the proposed framework can be used to reconstruct ground-covering plants, such as bushes and shrubs which have been given little attention in the literature. The effectiveness of our approach is validated by visually and quantitatively comparing with the state-of-the-art approaches.
机译:在本文中,我们描述了一种用于从多视图照片产生现实植物模型的新型程序建模技术。通过从图像获取的视觉和空间信息来增强现实主义。与以前依赖于用户交互或图像中的分支的先前接近的方法,我们的方法通过利用有效的立体术方法来自动估计每个图像的精确深度映射,并通过利用高效的立体光学制浆方法提取3D密度点云。将此点云作为软限制,我们适合参数化工厂表示来模拟植物增长进展。通过这种方式,我们能够从照片和3D点云提供的真实数据中综合参数化工厂模型。我们通过将各种植物与复杂的分支结构和显着的自咬合建模展示了所提出的方法的鲁棒性。我们还证明,所提出的框架可用于重建地面覆盖植物,例如在文献中一点关注的灌木丛和灌木。我们的方法的有效性通过视觉和定量与最先进的方法进行了验证。

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