首页> 外文会议>IEEE International conference of Moroccan Geomatics >Exploitation of spectral indices NDVI, NDWI SAVI in Random Forest classifier model for mapping weak rosemary cover: application on Gourrama region, Morocco.
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Exploitation of spectral indices NDVI, NDWI SAVI in Random Forest classifier model for mapping weak rosemary cover: application on Gourrama region, Morocco.

机译:浅索,NDWI&Savi在随机森林分类模型中的频谱指数利用:在弱迷迭香封面中的应用:在摩洛哥中青少年地区的应用。

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This work aims to present an efficient and practical method to mapping rosemary cover, which belongs to esparto grasslands. The approach consists of merging tow technics: remote sensing and machine learning. At first, three indices, normalized differenced vegetation index (NDVI), normalized differenced water index (NDWI), and soil adjusted vegetation index (SAVI), were calculated using Sentinel 2A MSI image clipped for the study area. In a second place, a set of terrain truth samples was used to train the model. In the end, the model was used to classify the RGB image built with the three spectral indices. The model was run for the study area, then validated by running it on another region and using samples. Results are maps of rosemary cover densities for both regions. The validation test showed a score of 90%, proving the efficiency of the model.
机译:这项工作旨在提出一种高效实用的方法来绘制迷迭香封面,属于Esparto草原。 该方法包括合并拖曳技术:遥感和机器学习。 首先,三个索引归一化差异植被指数(NDVI),归一化差异的水指数(NDWI)和土壤调整后的植被指数(SAVI)进行计算,用于研究研究区域。 在第二个地方,使用一组地形真相样本来训练模型。 最后,该模型用于分类使用三个光谱索引构建的RGB图像。 该模型为研究区域运行,然后通过在另一个区域上运行并使用样本来验证。 结果是两个地区的迷迭香覆盖密度的地图。 验证测试显示得分为90%,证明了模型的效率。

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