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Influence of pansharpening techniques in obtaining accurate vegetation thematic maps

机译:锐化技术对获取准确的植被专题图的影响

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In last decades, there have been a decline in natural resources, becoming important to develop reliable methodologies for their management. The appearance of very high resolution sensors has offered a practical and cost-effective means for a good environmental management. In this context, improvements are needed for obtaining higher quality of the information available in order to get reliable classified images. Thus, pansharpening enhances the spatial resolution of the multispectral band by incorporating information from the panchromatic image. The main goal in the study is to implement pixel and object-based classification techniques applied to the fused imagery using different pansharpening algorithms and the evaluation of thematic maps generated that serve to obtain accurate information for the conservation of natural resources. A vulnerable heterogenic ecosystem from Canary Islands (Spain) was chosen, Teide National Park, and Worldview-2 high resolution imagery was employed. The classes considered of interest were set by the National Park conservation managers. 7 pansharpening techniques (GS, FIHS, HCS, MTF based, Wavelet 'a trous' and Weighted Wavelet 'a trous' through Fractal Dimension Maps) were chosen in order to improve the data quality with the goal to analyze the vegetation classes. Next, different classification algorithms were applied at pixel-based and object-based approach, moreover, an accuracy assessment of the different thematic maps obtained were performed. The highest classification accuracy was obtained applying Support Vector Machine classifier at object-based approach in the Weighted Wavelet 'a trous' through Fractal Dimension Maps fused image. Finally, highlight the difficulty of the classification in Teide ecosystem due to the heterogeneity and the small size of the species. Thus, it is important to obtain accurate thematic maps for further studies in the management and conservation of natural resources.
机译:在过去的几十年中,自然资源一直在减少,对于开发可靠的自然资源管理方法变得至关重要。高分辨率传感器的出现为实用的环境管理提供了一种实用且具有成本效益的方法。在这种情况下,需要进行改进以获取更高质量的可用信息,以便获得可靠的分类图像。因此,全色锐化通过合并来自全色图像的信息来增强多光谱带的空间分辨率。该研究的主要目标是使用不同的全锐化算法实施应用于融合图像的基于像素和对象的分类技术,并对生成的专题图进行评估,以获取准确的信息以保护自然资源。选择了来自加那利群岛(西班牙)的脆弱的异质生态系统,泰德国家公园,并使用了Worldview-2高分辨率图像。被认为感兴趣的课程是由国家公园保护经理设置的。为了提高数据质量,以分析植被类型为目标,选择了7种全景锐化技术(GS,FIHS,HCS,基于MTF的小波“ a trous”和加权小波“ a trous”),以提高数据质量。接下来,将不同的分类算法应用于基于像素和基于对象的方法,此外,对获得的不同主题图进行了准确性评估。通过分形维数图融合图像在加权小波“ a trous”中基于对象的方法使用支持向量机分类器获得了最高的分类精度。最后,强调由于物种的异质性和小物种,在泰德生态系统中进行分类的困难。因此,获得准确的专题图对于进一步研究自然资源的管理和保护很重要。

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