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首页> 外文期刊>Central European journal of operations research: CEJOR >Application of different radial basis function networks in the illegal waste dump-surface modelling
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Application of different radial basis function networks in the illegal waste dump-surface modelling

机译:不同径向基函数网络在非法废物倾倒表面建模中的应用

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In quality assessment of digital elevation models (DEMs), geodetic field measurements have an important, but also a limited, role. They can achieve high accuracy, but the acquisition of data is time consuming, expensive and, in areas with a high-resolution DEM accessibility, non-effective. Therefore, field measurements are only performed at discrete selected points to evaluate the quality of the DEM used for further studies. The aim of this article is to show that differences in heights from field measurements and from a DEM can be used for height-deviation-surface modelling and for possible improvements in the available DEM. The procedure is related to situations where significant changes in the landscape occur. For surface modelling, this research included several radial basis function networks (RBFNs). From simulations, knowledge was acquired of appropriate results based on varying amounts of input data as well as on different neural network activation functions. This study indicates the potential use of geodetic field measurements in the improvement of a local DEM by RBFNs.
机译:在数字高度模型(DEMS)的质量评估中,大地测量的测量有一个重要,而且是有限的角色。它们可以实现高精度,但收购数据是耗时,昂贵的,并且在具有高分辨率DEM可访问性的区域,无效。因此,仅在离散选定点执行现场测量以评估用于进一步研究的DEM的质量。本文的目的是表明,从现场测量和DEM的高度差异可用于高度偏差 - 表面建模和可用DEM中的可能改进。该过程与景观发生重大变化的情况有关。对于表面建模,该研究包括几个径向基函数网络(RBFN)。根据模拟,知识是根据不同数量的输入数据以及不同的神经网络激活功能获得适当的结果。本研究表明,大地测量测量的潜在使用在改善局部DEM的局部DEM。

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