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Shape modeling of multiple objects from shading images using genetic algorithms

机译:使用遗传算法从阴影图像对多个对象进行形状建模

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This paper describes about an application of genetic algorithms (GAs) to modeling of multiple object from CCD images. Shape modeling is a very important issue for shape recognition for robot vision, representing 3D shapes in the virtual world, and so on. Superquadrics are often used for shape modeling because they can represent various shapes by using a single equation. In this paper, we propose a new method for applying GAs to estimation of the superquadrics parameters of every objects in a shading image which are taken with a CCD camera. The superquadrics parameters are represented by strings. The string is evaluated by the similarity between the given 2D shading image and the calculated shading image from the 3D shape represented by the parameters. For finding the model parameters of each object in the image, sharing scheme is employed so that multiple solutions can be held in the population of the strings. Some results of the computer experiments demonstrate that the proposed method can provide good model descriptions of the 3D object in shading images.
机译:本文介绍了遗传算法(GA)在CCD图像中的多对象建模中的应用。形状建模对于机器人视觉的形状识别,在虚拟世界中表示3D形状等是一个非常重要的问题。超二次方通常用于形状建模,因为它们可以通过使用一个方程式来表示各种形状。在本文中,我们提出了一种新的方法来应用遗传算法来估计由CCD相机拍摄的阴影图像中每个对象的超二次参数。超二次参数用字符串表示。通过给定的2D阴影图像与根据参数表示的3D形状计算出的阴影图像之间的相似性来评估字符串。为了找到图像中每个对象的模型参数,采用共享方案,以便可以在字符串总体中保留多个解决方案。计算机实验的一些结果表明,该方法可以为阴影图像中的3D对象提供良好的模型描述。

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