首页> 外文期刊>Revista rvore >Avalia??o de técnicas de classifica??o digital de imagens landsat em diferentes padr?es de cobertura da terra em Rond?nia
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Avalia??o de técnicas de classifica??o digital de imagens landsat em diferentes padr?es de cobertura da terra em Rond?nia

机译:评估龙隆不同地球覆盖图案中的数字土地图像分类技术?

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Remotely sensed imagery has been widely used for land use/cover classification thanks to the periodic data acquisition and the widespread use of digital image processing systems offering a wide range of classification algorithms. The aim of this work was to evaluate some of the most commonly used supervised and unsupervised classification algorithms under different landscape patterns found in Rond?nia, including (1) areas of mid-size farms, (2) "fish-bone" settlements and (3) a gradient of forest and Cerrado (Brazilian savannah). Comparison with a reference map based on the kappa statistics resulted in good to superior indicators (best results - K-means: k=0.68; k=0.77; k=0.64 and MaxVer: k=0.71; k=0.89; k=0.70 respectively for three areas mentioned). Results show that choosing a specific algorithm requires to take into account both its capacity to discriminate among various spectral signatures under different landscape patterns as well as a cost/benefit analysis considering the different steps performed by the operator performing a land cover/use map. it is suggested that a more systematic assessment of several options of implementation of a specific project is needed prior to beginning a land use/cover mapping job.
机译:由于周期性数据采集和数字图像处理系统的广泛使用提供了广泛的分类算法,因此远程感测图像已广泛用于土地使用/覆盖分类。这项工作的目的是评估在rond?nia中发现的不同景观模式下的一些最常用的监督和无人监督分类算法,包括(1)中型农场的区域,(2)“鱼骨”定居点和(3)森林和塞拉多(巴西大草原)的梯度。与基于Kappa统计数据的参考图的比较导致卓越的指标良好(最佳结果 - K-Mean:K = 0.68; k = 0.77; k = 0.64和maxver:k = 0.71; k = 0.89; k = 0.89对于提到的三个领域)。结果表明,选择特定算法需要考虑其在不同景观模式下的各种光谱签名中区分其能力以及考虑操作员执行陆地覆盖/使用地图所执行的不同步骤的成本/益处分析。建议在开始土地使用/封面映射工作之前需要更系统地评估特定项目的几个实施方案。

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