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Change detection of surface mining activity and reclamation based on a machine learning approach of multi-temporal Landsat TM imagery

机译:基于多时态Landsat TM影像的机器学习方法的地表采矿活动和填海变化检测

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摘要

Being able to quantify land cover changes due to mining and reclamation at a watershed scale is of critical importance in managing and assessing their potential impacts to the Earth system. In this study, a remote sensing-based methodology is proposed for quantifying the impact of surface mining activity and reclamation from a watershed to local scale. The method is based on a Support Vector Machines (SVMs) classifier combined with multi-temporal change detection of Landsat TM imagery. The performance of the technique was evaluated at selected open mining sites located in the island of Milos in Greece. Assessment of the mining impact in the studied areas was based on the confusion matrix statistics, supported by co-orbital QuickBird-2 very high spatial resolution imagery. Overall classification accuracy of the thematic land cover maps produced was reported over 90%. Our analysis showed expansion of mining activity throughout the whole 23-year study period, while the transition of mining areas to soil and vegetation was evident in varying rates. Our results evidenced the ability of the method under investigation in deriving highly and accurate land cover change maps, able to identify the mining areas as well as those in which excavation was replaced by natural vegetation. All in all, the proposed technique showed considerable promise towards the support of a sustainable environmental development and prudent resource management.
机译:能够量化流域范围内采矿和开垦引起的土地覆盖变化,对于管理和评估其对地球系统的潜在影响至关重要。在这项研究中,提出了一种基于遥感的方法,用于量化从分水岭到地方规模的露天采矿活动和开垦的影响。该方法基于支持向量机(SVM)分类器,结合Landsat TM影像的多时变检测。在希腊米洛斯岛上选定的露天采矿场评估了该技术的性能。在研究区域内对采矿影响的评估是基于混淆矩阵统计数据,并由同轨QuickBird-2超高分辨率图像提供支持。据报告制作的专题土地覆盖图的总体分类准确性超过90%。我们的分析表明,在整个23年的研究期内,采矿活动都在扩展,而采矿区向土壤和植被的过渡则以不同的速率表现出来。我们的结果证明了所研究方法能够得出高度准确的土地覆被变化图,能够识别采矿区以及那些被天然植被代替挖掘的地区。总而言之,所提出的技术对支持可持续的环境发展和审慎的资源管理显示出巨大的希望。

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