首页> 外文会议>Plant Growth Modeling, Simulation, Visualization and Applications >A plastic, dynamic and reducible 3D geometric model for simulating gramineous leaves
【24h】

A plastic, dynamic and reducible 3D geometric model for simulating gramineous leaves

机译:可塑性,动态且可简化的3D几何模型,用于模拟禾本科叶片

获取原文
获取原文并翻译 | 示例

摘要

Unlike trees, the 3D architecture of gramineous plants is much more related to the shapes of its leaves than the arrangement of its branches. Many modelling efforts have thus concentrated on correctly capturing its complex shape at different stages and use them as scalable geometric primitives. Still, additional control of such objects is needed in the context of Functional Structural Modelling. The objective of this work is to propose a plastic and dynamic 3D leaf model that is well suited for such uses, still able to capture a variety of observed static shapes. Leaf shape is modeled by a parametric surface describing leaf midrib curvature, leaf width variation, undulation of leaf margins and twist along the midrib. Meshes can be generated from these surfaces, and reduced using a decimation algorithm. The model can be fitted with data or with curves drawn by user interaction. Morphological operators are defined and allows for plastic deformation of the control curves. The dynamics of shape acquisition can also be specified, and combined with morphological operators to simulate various scenarios of evolution and responses to stresses. The capabilities of the model are demonstrated through several cases of use. Future directions of research are thought to be a better integration of mechanical or physiological constraints that would reduce the model plasticity but avoid user-induced unrealistic simulation.
机译:与树木不同,禾本科植物的3D结构与其叶子的形状有关,而不是其树枝的排列有关。因此,许多建模工作都集中在正确捕获不同阶段的复杂形状并将它们用作可缩放的几何图元上。在功能结构建模的上下文中,仍然需要对此类对象的其他控制。这项工作的目的是提出一种非常适合此类用途的塑料动态3D叶子模型,该模型仍然能够捕获各种观察到的静态形状。叶片形状由描述叶片中脉曲率,叶片宽度变化,叶缘起伏和沿中脉扭曲的参数化表面建模。可以从这些表面生成网格,并使用抽取算法减少网格。该模型可以拟合数据或通过用户交互绘制曲线。定义了形态运算符,并允许控制曲线发生塑性变形。还可以指定形状获取的动力学,并将其与形态算子结合起来以模拟各种演化情况和对应力的响应。该模型的功能通过几种使用案例得以展示。人们认为,未来的研究方向是更好地整合机械或生理约束条件,这将降低模型的可塑性但避免用户引起的不切实际的仿真。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号