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首页> 外文期刊>Vestnik Mordovskogo Universiteta >Improving the Efficiency of Remote Sensing Data Interpretation by Analyzing Neighborhood Descriptors.
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Improving the Efficiency of Remote Sensing Data Interpretation by Analyzing Neighborhood Descriptors.

机译:通过分析邻域描述符来提高遥感数据解释的效率。

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Introduction. In evaluating the space-time structure of the Earth’s surface, the data of remote sensing of the Earth become more important. Increasing the effectiveness of space survey analysis tools is possible through studying the problem of obtaining an integrated space-time characterization of the state of lands. The purpose of this study is to improve the accuracy of the automated analysis of remote sensing data by taking into account the invariant and dynamic descriptors of the vicinity. Materials and Methods. In order to improve the accuracy of the remote sensing data classification, a computation of complex space-time characteristics of the state of the lands was conducted based on the system analysis of data characterizing the dynamic and invariant states of the territory surrounding the geophysical site. The formalization of this process includes methods for calculating a set of numerical descriptors of the neighborhood: local entropy, local range, standard deviation, color moment, histogram of hues, and color cortege. A technique for calculating a complex descriptor based on the Fisher vector is described. To approbate the solution, a plan for the experiment was drawn up and a sample of the initial data was sampled. Results. The approbation of the methodology and the algorithm developed on its basis, implemented as a set of programs, on the test polygon system showed a variation in the classification accuracy in the range of 81–89% (without regard to the neighborhood), and taking into account the neighborhood, it increases to 91–97%. It is revealed that a significant increase in the radius of the analyzed neighborhood leads to a decrease in the classification accuracy. Conclusions. The application of the developed set of programs allows for the rapid implementation of modeling of spatial systems for the purpose of thematic mapping of land use and analyzing the development of emergency situations. The developed methodology for analyzing lands with regard to the descriptors of the neighborhood makes it possible to improve the accuracy of classification.
机译:介绍。在评估地球表面的时空结构时,地球遥感数据变得更加重要。通过研究获得土地状况的综合时空特征的问题,有可能提高空间调查分析工具的有效性。这项研究的目的是通过考虑附近的不变和动态描述符来提高遥感数据自动分析的准确性。材料和方法。为了提高遥感数据分类的准确性,在对表征地球物理站点周围地区动态和不变状态的数据进行系统分析的基础上,对土地状态的复杂时空特征进行了计算。此过程的形式化包括用于计算邻域的一组数字描述符的方法:局部熵,局部范围,标准偏差,色矩,色相直方图和颜色cortege。描述了用于基于费舍尔向量来计算复杂描述符的技术。为了批准该解决方案,制定了实验计划,并对初始数据进行了采样。结果。在测试多边形系统上对方法和基于其开发的算法的认可(作为一组程序实施)显示出分类精度在81-89%的范围内变化(不考虑邻域),并且考虑到邻居,它增加到91–97%。结果表明,所分析邻域的半径显着增加会导致分类精度降低。结论。应用开发的程序集可以快速实施空间系统建模,以实现土地利用的专题制图和分析紧急情况的发展。所开发的关于邻域描述符的土地分析方法,有可能提高分类的准确性。

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