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NEW METHOD FOR CONSTRUCTING A VISIBILITY GRAPH-NETWORK IN 3D SPACE AND A NEW HYBRID SYSTEM OF MODELING

机译:在3D空间中构建可视化图形网络的新方法和新的混合建模系统

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This paper describes a new method for constructing a visibility graph in 3D space. We use a method for predicting porosity of hardened specimens. We also use an intelligent system method to predict porosity of hardened specimens. Visibility graphs have many applications, one of which is the analysis of trend lines of market graphs. It is possible to use 2D visibility graphs for such analysis and the construction for 2D visibility graphs is well known; however, in this paper, we will present a new method for the construction of 3D visibility graphs. 3D visibility computations are central to any computer graphics application. Drawing graphs as nodes connected by links in 3D space is visually compelling but computationally difficult. Thus, the construction of 3D visibility graphs is highly complex and requires professional computers or supercomputers. This article describes a new method for analysing 3D visibility graphs. We develop new method for draws 3D visibility graphs for analysing microstructure pictures of robot laser-hardened specimens. The microstructure of robot laser-hardened specimens is very complex; however, we can present it using 3D visibility graphs. New method for the construction of 3D visibility graphs is very useful in many cases, including: illumination and rendering, motion planning, pattern recognition, computer graphics, computational geometry and sensor networks and the military and automotive industries. We use this new algorithm for determination complexity of porosity of the microstructure of robot laser-hardened specimens. For predicting surface porosity of hardened specimens we use neural network, genetic algorithm and multiple regression. With intelligent system we increase production of process of laser hardening, because we decrease time of process and increase topographical property of materials. Hybrid evolutionary computation is a generic, flexible, robust, and versatile method for solving complex global optimization problems and can also be used in practical applications. This paper explores the use of an intelligent system with such a hybrid method to improve existing hybrids. It describes a new hybrid method based on the cycle integration method.
机译:本文介绍了一种在3D空间中构造可见性图的新方法。我们使用一种方法来预测硬化试样的孔隙率。我们还使用智能系统方法来预测硬化样品的孔隙率。可见度图具有许多应用,其中之一是对市场图趋势线的分析。可以使用2D可见度图进行此类分析,并且2D可见度图的构造是众所周知的;但是,在本文中,我们将提出一种构造3D可见度图的新方法。 3D可见性计算对于任何计算机图形应用程序都是至关重要的。在3D空间中将图形绘制为通过链接连接的节点是视觉上令人信服的,但是计算上却很困难。因此,3D可见性图的构建非常复杂,并且需要专业计算机或超级计算机。本文介绍了一种用于分析3D可见性图的新方法。我们开发了一种绘制3D可见度图的新方法,用于分析机器人激光硬化标本的微观结构图片。机器人激光硬化标本的微观结构非常复杂。但是,我们可以使用3D可见度图表来呈现它。构建3D可见度图的新方法在许多情况下非常有用,包括:照明和渲染,运动计划,模式识别,计算机图形,计算几何和传感器网络以及军事和汽车行业。我们使用这种新算法来确定机器人激光淬火标本的微观结构的孔隙度的复杂性。为了预测硬化试样的表面孔隙率,我们使用神经网络,遗传算法和多元回归。使用智能系统,可以减少激光加工时间并增加材料的形貌,从而增加了激光淬火工艺的产量。混合进化计算是解决复杂的全局优化问题的通用,灵活,健壮和通用的方法,也可以在实际应用中使用。本文探讨了使用具有这种混合方法的智能系统来改善现有混合动力的方法。它描述了一种基于循环积分方法的新混合方法。

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