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Remote sensing imagery segmentation based on multi-objective optimization algorithms

机译:基于多目标优化算法的遥感影像分割

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Remote Sensing (RS) has been used to obtain relevant information about objects without the explicit necessity to stay in contact with them. RS collects measured data from the emanated energy of the surface of the earth. This process aims the construction of knowledge-based systems to identify interesting geographic features automatically. In RS, multispectral image segmentation is one of the most widespread methodologies for information extraction, using schemes comprising a wide variety of hard and soft grouping mechanisms based on different non-standard similarity measures making the classification problem to be application dependent. This procedure uses the spectral information contained in an image to recognize regions of interest. The segmentation of multispectral images is usually conducted by performing segmentation over a specific band according to the application. However, the segmentation of a specific channel might not perform well on the other bands of the image. This paper proposes a general scheme for multispectral imagery segmentation using multi-objective evolutionary algorithms (MOEAs) to identify thresholds encoding the best trade-offs between the segmentation criteria of various channels of the multispectral image. An evaluation of the performance of the proposed methodology is presented over a multispectral benchmark set composed of different images complexities and compared with several multi-objective algorithms.
机译:遥感(RS)已用于获取有关对象的相关信息,而无需明确地与它们保持联系。 RS从地球表面发出的能量中收集测量数据。此过程旨在构建基于知识的系统,以自动识别有趣的地理特征。在RS中,多光谱图像分割是信息提取最广泛的方法之一,它使用的方案包括基于不同非标准相似性度量的各种硬分组和软分组机制,从而使分类问题取决于应用程序。此过程使用图像中包含的光谱信息来识别感兴趣的区域。根据应用,通常通过在特定频带上执行分割来进行多光谱图像的分割。但是,特定通道的分割在图像的其他波段上可能效果不佳。本文提出了一种使用多目标进化算法(MOEA)进行多光谱图像分割的通用方案,以识别编码多光谱图像各通道分割标准之间最佳折衷的阈值。在由不同图像复杂度组成的多光谱基准集上介绍了所提出方法的性能,并与几种多目标算法进行了比较。

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