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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >NEAR-OPTIMAL MST-BASED SHAPE DESCRIPTION USING GENETIC ALGORITHM
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NEAR-OPTIMAL MST-BASED SHAPE DESCRIPTION USING GENETIC ALGORITHM

机译:基于遗传算法的基于MST的近乎最佳形状描述

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摘要

A new method for the selection of the optimal structuring element for shape description and matching based on the morphological signature transform (MST) is presented in this paper. For a given class of shapes the optimal structuring element for MST method is selected by means of a genetic algorithm. The optimization criteria is formulated to enable a robust shape matching. Experiments have been performed on a class of model shapes. The proposed optimal shape description method is applied to the problem of shape matching which evolves in many object recognition applications. Here, an unknown object is matched to a set of known objects in order to classify it into one of finite number of classes. Experimental results are presented and discussed. [References: 21]
机译:提出了一种新的基于形态学特征变换(MST)的形状描述和匹配最优结构元素选择方法。对于给定的形状类别,通过遗传算法选择用于MST方法的最佳结构元素。制定了优化标准以实现可靠的形状匹配。已经对一类模型形状进行了实验。所提出的最佳形状描述方法被应用于在许多对象识别应用中发展的形状匹配问题。在此,未知对象与一组已知对象匹配,以便将其分类为有限数量的类中的一个。实验结果进行了介绍和讨论。 [参考:21]

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