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Comparative Study of Soft Computing Based High-Resolution Satellite Image Segmentation in Additive and User-Oriented Color Space

机译:基于软计算的高分辨率卫星图像分割的比较研究和用户导向的颜色空间

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The satellite image is an assortment of the massive quantity of information for agriculture, environmental assessment and monitoring, mapping, military, and future planning of maintaining the natural resources and disasters. So it contains more useful and necessary information for analysis and processing. High resolution, low-cost, and easy availability of satellite images are the reasons for the fast growth in the usage of satellite images to extract the necessary information. For this aspect, various approaches have been proposed. Both soft and non-soft computing methods have been applied on satellite images to obtain meaningful clusters. Even though many kinds of literature are available for non-soft computing methods, only a limited number of authors have proposed soft computing based segmentation of satellite images. This work proposed a novel technique for the segmentation of RGB and HSI color space transformed satellite images using soft computing techniques.
机译:卫星形象是各种各样的农业,环境评估和监测,绘图,军事和未来规划维护自然资源和灾害的数量。因此,它包含更多有用和必要的分析和处理信息。高分辨率,低成本和卫星图像的便于可用性是卫星图像使用中快速增长以提取必要信息的原因。在这方面,已经提出了各种方法。软和非软计算方法都已应用于卫星图像,以获得有意义的群集。尽管许多类型的文献可用于非软计算方法,但只有有限数量的作者已经提出了基于软计算的卫星图像的细分。这项工作提出了一种使用软计算技术进行RGB和HSI颜色空间转换卫星图像的新颖技术。

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