Cartografía de bosques de manglar mediante imágenes de sensores remotos: estudio de caso Buenaventura, Colombia

IF 0.4 Q4 REMOTE SENSING Revista de Teledeteccion Pub Date : 2019-06-27 DOI:10.4995/RAET.2019.11684
M. A. Perea-Ardila, F. Oviedo-Barrero, J. Leal-Villamíl
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引用次数: 4

Abstract

Mangroves are plant communities of high ecological and economic importance for coastal regions. This investigation provides a methodology for mapping Mangrove forests through remote sensing images in a semidetail scale (1:25,000) in a sector of the municipality of Buenaventura, Colombia. A Sentinel 2 image and 2017 highresolution ortophotomosaic of the municipality were used for the mangrove cartography, using QGIS software, spectral analysis was performed and supervised classification was established using Maximum Likelihood algorithm. Results shown that mangrove is the most representative cover in the study area whit 7,264.21 ha in total extension (59.21% of total area), the development classification got a thematic accuracy of 80% and 0.70 in Kappa index. The used methodology can be used as an academic and research reference for mangrove semi-detail mapping in the world.
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利用遥感图像绘制红树林地图:哥伦比亚布埃纳文图拉案例研究
红树林是沿海地区具有高度生态和经济重要性的植物群落。这项调查提供了一种方法,通过遥感图像绘制哥伦比亚布埃纳文图拉市一个地区的半日尺度(1:25000)红树林地图。Sentinel 2图像和2017年该市的高分辨率正射影像用于红树林制图,使用QGIS软件进行光谱分析,并使用最大似然算法建立监督分类。结果表明,红树林是研究区最具代表性的植被,总面积为7264.21公顷(占总面积的59.21%),发展分类的主题准确率为80%,Kappa指数为0.70。所采用的方法可作为世界红树林半详细测绘的学术和研究参考。
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来源期刊
Revista de Teledeteccion
Revista de Teledeteccion REMOTE SENSING-
CiteScore
1.80
自引率
14.30%
发文量
11
审稿时长
10 weeks
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