Highlights'/> Random cutting plane approach for identifying volumetric features in a CAD mesh model
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Random cutting plane approach for identifying volumetric features in a CAD mesh model

机译:用于识别CAD网格模型中体积特征的随机切割平面方法

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HighlightsFeature detection using randomised plane cutting in a CAD mesh model.The algorithm uses graph traversals and without using threshold values.Geometry of most of the extracted features is identified using Gauss map.Interacting features have also been extracted and separated.Our approach can also correctly process many types of interacting features.Graphical abstractDisplay OmittedAbstractThis paper presents a method to identify regions that make up features like holes, slots, pockets as well as interacting features in a three-dimensional mesh of a computer-aided design (CAD)/Engineering model. Feature recognition is an important area in the field of CAD/Engineering with applications in model retrieval, creating an analysis model by defeaturing of the designed model for finite element applications, etc. Most feature recognition methods use either a cluster-based decomposition or feature line extraction through solid angles or curvature values, followed by graph-based heuristics. Such approaches require a user parameter for clustering or a threshold value for angle/curvature, neither of which is an easily deterministic one. The proposed algorithm identifies the features using contours generated by random cutting planes, followed by graph traversals (and not using heuristics) and without using parameter/threshold values. The algorithm can identify blind holes, through holes, slots and pockets. The geometry of most of the extracted features has also been identified using Gauss map. Interacting features have also been extracted and separated, which normally pose difficulty for most algorithms. Extensive experiments on CAD models from various benchmarks show that the algorithm is robust. Comparison with different algorithms (of which code was available) shows that our approach performs admirably and in the case of interacting features, the algorithm performs better than the existing ones.
机译: 突出显示 在CAD网格模型中使用随机平面切割进行特征检测。 该算法使用图形遍历,而不使用阈值。 大多数提取的特征使用高斯地图进行标识。 互动功能ha 我们的方法还可以正确处理多种类型的交互功能。 图形摘要 省略显示 摘要 本文提出了一种识别区域的方法在计算机辅助设计(CAD)/工程模型的三维网格中激活孔,槽,口袋和交互作用等特征。特征识别是CAD /工程领域中重要的领域,具有在模型检索中的应用,通过破坏有限元应用的设计模型来创建分析模型等。大多数特征识别方法都使用基于聚类的分解或特征线通过立体角或曲率值提取,然后进行基于图的启发式提取。这样的方法需要用于聚类的用户参数或用于角度/曲率的阈值,这两者都不是容易确定的。所提出的算法使用由随机切割平面生成的轮廓来识别特征,然后通过图形遍历(而不使用启发式)并且不使用参数/阈值。该算法可以识别盲孔,通孔,狭槽和凹穴。大部分提取特征的几何形状也已使用高斯图进行了识别。交互特征也已被提取和分离,这通常给大多数算法带来困难。来自各种基准的CAD模型的大量实验表明,该算法是可靠的。与不同算法(有可用代码)的比较表明,我们的方法性能出色,并且在交互功能的情况下,该算法的性能要优于现有算法。

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