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   Determination of a terrestrial reference frame via Kalman filtering of very long baseline interferometry data  
   
نویسنده Soja Benedikt ,Nilsson Tobias ,Balidakis Kyriakos ,Glaser Susanne ,Heinkelmann Robert ,Schuh Harald
منبع journal of geodesy - 2016 - دوره : 90 - شماره : 12 - صفحه:1311 -1327
چکیده    Terrestrial reference frames (trf), such as the itrf2008, are primary products of geodesy. in this paper, we present trf solutions based on kalman filtering of very long baseline interferometry (vlbi) data, for which we estimate steady station coordinates over more than 30 years that are updated for every single vlbi session. by applying different levels of process noise, non-linear signals, such as seasonal and seismic effects, are taken into account. the corresponding stochastic model is derived site-dependent from geophysical loading deformation time series and is adapted during periods of post-seismic deformations. our results demonstrate that the choice of stochastic process has a much smaller impact on the coordinate time series and velocities than the overall noise level. if process noise is applied, tests with and without additionally estimating seasonal signals indicate no difference between the resulting coordinate time series for periods when observational data are available. in a comparison with epoch reference frames, the kalman filter solutions provide better short-term stability. furthermore, we find out that the kalman filter solutions are of similar quality when compared to a consistent least-squares solution, however, with the enhanced attribute of being easier to update as, for instance, in a post-earthquake period.
کلیدواژه Terrestrial reference frame ,VLBI ,Kalman filter ,Seismic events ,Seasonal signals
آدرس GFZ German Research Centre for Geosciences, Germany, GFZ German Research Centre for Geosciences, Germany, Technische Universität Berlin, Germany, Technische Universität Berlin, Germany, GFZ German Research Centre for Geosciences, Germany, GFZ German Research Centre for Geosciences, Germany. Technische Universität Berlin, Germany
 
     
   
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