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Evaluation of different fitness functions integrated with genetic algorithm on unsupervised classification of satellite images

机译:与遗传算法集成的不同健身功能的评价卫星图像无监督分类

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In traditional unsupervised classification method, the number of clusters usually needs to be assigned subjectively by analysts, but in fact, in most situations, the prior knowledge of the research subject is difficult to acquire, so the suitable and best cluster numbers are very difficult to define. Therefore, in this research, an effective heuristic unsupervised classification method—Genetic Algorithm (GA) is introduced and tested here, because it can be through the mathematical model and calculating procedure of optimization to determine the best cluster numbers and centers automatically. Furthermore, two well-known models--Davies-Bouldin's and the K-Means algorithm, which adopted by most research for the applications in pattern classification, are integrated with GA as the fitness functions. In a word, in this research, a heuristic method—Genetic Algorithm (GA), is adopted and integrated with two different indices as the fitness functions to automatically interpret the clusters of satellite images for unsupervised classification. The classification results were compared to conventional ISODATA results, and to ground truth information derived from a topographic map for the estimation of classification accuracy. All image-processing program is developed in MATLAB, and the GA unsupervised classifier is tested on several image examples.
机译:在传统的无监督分类方法中,通常需要通过分析师主观地分配群集数量,但实际上,在大多数情况下,研究主题的先验知识难以获得,因此合适的和最佳的聚类数字非常困难定义。因此,在本研究中,在此引入和测试了一种有效的启发式无监督分类方法 - 遗传算法(GA),因为它可以通过数学模型和计算过程,以便自动确定最佳的群集号码和中心。此外,两个着名的模型 - Davies-Bouldin和K-Means算法,由模式分类中的大多数研究采用的k-means算法,与GA作为健身功能集成。总之,在该研究中,采用启发式方法遗传算法(GA),并将其与两个不同的指标相结合,因为适合函数以自动解释无监督的分类的卫星图像集群。将分类结果与传统的ISODATA结果进行比较,以及从地形图的地形信息,以估计分类准确性。所有图像处理程序都是在MATLAB中开发的,并且在几个图像示例上测试了GA无监督的分类器。

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