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Shape reconstruction by genetic algorithms and artificial neural networks

机译:利用遗传算法和人工神经网络进行形状重构

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摘要

This paper presents a new surface reconstruction method based on complex form functions, genetic algorithms and neural networks. Surfaces can be reconstructed in an analytical representation format. This representation is optimal in the sense of least-square fitting by predefined subsets of data points. The surface representations are achieved by evolution via repetitive application of crossover and mutation operations together with a back-propagation algorithm until a termination condition is met. The expression is finally classified into specific combinations of bask functions. The proposed method can be used for CAD model reconstruction of 3D objects and free smooth shape modelling. We have implemented the system demonstration with Visual C++ and MatLab to enable real time surface visualisation in the process of design.
机译:本文提出了一种基于复杂形式函数,遗传算法和神经网络的表面重构新方法。可以以解析表示形式重建表面。从最小二乘拟合通过数据点的预定义子集,这种表示是最佳的。通过重复应用交叉和变异操作以及反向传播算法直至满足终止条件,通过进化来实现表面表示。最终将表达式分类为基础函数的特定组合。所提出的方法可以用于3D物体的CAD模型重建和自由的平滑形状建模。我们已经使用Visual C ++和MatLab进行了系统演示,以在设计过程中实现实时表面可视化。

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