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A Study on monitoring Land Use/Cover Change of mining area based on Ticket-Voting SVM classification

机译:基于票务支持向量机分类的矿区土地利用/覆被变化监测研究

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Based on the development of classification algorithm applied in monitoring spatio-temporal dynamic changes of coalmining areas, several improvements were made on feature space and classification model in this paper. There were two innovations in our study: 1) During building the feature spaces, a new index for extracting information about mining area was created, which can classify mining area and settlements efficiently; 2) a special ticket-voting SVM algorithm with wavelet kernel function was proposed, which provides higher classification accuracy than other traditional classifiers via the secondary classification. Here we took the northeast plain of Pei county in Xuzhou city as a studying region, applying the proposed method to implement the classification by using the image of multi-temporal TM/ETM from the year of 1987 to 2013. How to carry on deep analysis combined with various non-spatial data is much more significant. Then we studied the rules of dynamic changes of land use/cover and further analyzed their driving factors by combining RS interpretation with GIS spatial analysis techniques. In this study, image recognition technology was applied to the problems of environmental change in coal mining area. These explanations provide some valuable supports for human to recognize and deal with the conflicts between economic development and environmental protection in coal mining areas.
机译:基于分类算法在煤矿区时空动态变化监测中的应用,对特征空间和分类模型进行了一些改进。我们的研究有两项创新:1)在构建特征空间期间,创建了一个用于提取矿区信息的新索引,该索引可以有效地对矿区和居民点进行分类; 2)提出了一种具有小波核函数的特殊票务支持向量机算法,该算法通过二级分类比其他传统分类器具有更高的分类精度。在这里,我们以徐州市plain县东北平原为研究区域,运用本文提出的方法,利用1987-2013年的多时相TM / ETM图像进行分类。与各种非空间数据相结合则更为重要。然后,我们研究了土地利用/覆被的动态变化规律,并通过将RS解释与GIS空间分析技术相结合,进一步分析了其驱动因素。在这项研究中,图像识别技术被应用于煤矿地区的环境变化问题。这些解释为人们认识和处理煤矿地区经济发展与环境保护之间的矛盾提供了宝贵的支持。

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