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Abstract:
To discuss the spatial interpolation based on panel data with spatial autocorrelation, the first-order spatial autoregressive interpolation model and the Kriging algorithm interpolation model are established from the perspective of the cross-sectional data. Genetic algorithm back-propagation neural network interpolation model is established from the perspective of the time-series data. A spatial combination interpolation model is established by the results of these models. The weights of the combination model is calculated by a new method of spatial drift. An empirical study is carried out with interpolation some areas' GDP per capita in Fujian 2007, China. The result shows that the most effective one is the spatial combination interpolation model. © 2009 IEEE.
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Year: 2009
Volume: 3
Page: 389-393
Language: English
Cited Count:
SCOPUS Cited Count: 1
ESI Highly Cited Papers on the List: 0 Unfold All
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30 Days PV: 0
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