Title of article :
A numerical comparative study on data assimilation using Kalman filters
Author/Authors :
G. Dimitriu، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2008
Pages :
19
From page :
2247
To page :
2265
Abstract :
Kalman filtering has become a powerful framework for solving data assimilation problems. Of interest here are the low-rank filters which are computationally efficient for solving large-scale data assimilation problems. Together with theoretical aspects on the basis of which some common low-rank filters are designed, the paper also presents numerically comparative results of data assimilation using an air pollution model. The performance of such filters, as depending on the distance between the measurement locations and emission points, is investigated.
Keywords :
Data assimilation , Air pollution modeling , Kalman filters , Advection–diffusion equation , Low-rank filters
Journal title :
Computers and Mathematics with Applications
Serial Year :
2008
Journal title :
Computers and Mathematics with Applications
Record number :
920825
Link To Document :
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