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Implementation Method of Cutting Simulation Based on Transient Display and Delay Adjustment Strategy

机译:基于瞬态显示和延迟调整策略的切割仿真的实现方法

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摘要

In the light of the problems that exist in the current cutting algorithms: first, the number of tetrahedron elements increases as the cutting goes on, which leads to the decrease of the algorithm efficiency. Second, the topology structure is constantly updated during the cutting process, which leads to the stutter phenomenon in cutting display. In this paper, a cutting simulation implementation method based on transient display and delay adjustment strategy is proposed. Firstly, the feature points in the original path are screened by the feature criterion function, and the feature path is established. Then, by using the concept of minimum sum of square defined in this paper, the optimal path of the separation is found with the help of feature path points, and the pseudo effect of cutting is directly displayed by designing the transient display module. The delay adjustment is carried out in the cutting gap, and the topology separation in the delay adjustment is implemented by the node offset spread algorithm and the duplicate removal process with timeliness. Finally, the advantages and feasibility of the cutting algorithm proposed in this paper are verified by practical tests. The test results show that the transient display algorithm proposed in this paper takes about 20?ms. With the number of triangular patches increasing, the growth rate of transient display time remains low. The cutting simulation is implemented by using transient display and delay adjustment strategy, which greatly improves the simulation efficiency.
机译:鉴于当前切割算法中存在的问题:首先,随着切割的开启,四面体元件的数量增加,这导致算法效率降低。其次,在切割过程中不断更新拓扑结构,这导致切割显示器中的口吃现象。本文提出了一种基于瞬态显示和延迟调整策略的切割仿真实现方法。首先,通过特征标准函数筛选原始路径中的特征点,并且建立特征路径。然后,通过使用本文定义的最小总和的概念,在特征路径点的帮助下发现分离的最佳路径,并且通过设计瞬态显示模块,直接显示切割的伪效果。在切割间隙中执行延迟调整,并且延迟调整中的拓扑分离由节点偏移扩频算法和具有时间的重复的去除过程实现。最后,通过实际测试验证了本文提出的切割算法的优点和可行性。测试结果表明,本文提出的瞬态显示算法大约需要20个?MS。随着三角形贴片的数量增加,瞬态显示时间的生长速率保持低位。通过使用瞬态显示和延迟调整策略来实现切割模拟,这大大提高了模拟效率。

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