The Impact of Different Filters on the Gravity Field Recovery Based on the GOCE Gradient Data

Author:

Mu Qinglu12ORCID,Wang Changqing12,Zhong Min3,Yan Yihao4ORCID,Liang Lei5

Affiliation:

1. State Key Laboratory of Geodesy and Earth’s Dynamics, Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan 430077, China

2. College of Earth and Planetary Sciences, University of Chinese Academy of Sciences, Beijing 100049, China

3. School of Geospatial Engineering and Science, Sun Yat-sen University, Zhuhai 519082, China

4. Max-Planck-Institut für Gravitationsphysik (Albert-Einstein-Institut) and Institut für Gravitationsphysik, Leibniz Universität Hannover, 30167 Hannover, Germany

5. School of Geographic Information and Tourism, Chuzhou University, Chuzhou 239000, China

Abstract

The electrostatic gravity gradiometer carried by the Gravity field and steady-state Ocean Circulation Explorer (GOCE) satellite is affected by accelerometer noise and other factors; hence, the observation data present complex error characteristics in the low-frequency domain. The accuracy of the recovered gravity field will be directly affected by the design of the filters based on the error characteristics of the gradient data. In this study, the applicability of various filters to different errors in observation is evaluated, such as the 1/f error and the orbital frequency errors. The experimental results show that the cascade filter (DARMA), which is formed of a differential filter and an autoregressive moving average filter (ARMA) filter, has the best accuracy for the characteristic of the 1/f low-frequency error. The strategy of introducing empirical parameters can reduce the orbital frequency errors, whereas the application of a notch filter will worsen the final solution. Frequent orbit changes and other changes in the observed environment have little impact on the new version gradient data (the data product is coded 0202), while the influence cannot be ignored on the results of the old version data (the data product is coded 0103). The influence can be effectively minimized by shortening the length of the arc. By analyzing the above experimental findings, it can be concluded that the inversion accuracy can be effectively improved by choosing the appropriate filter combination and filter estimation frequency when solving the gravity field model based on the gradient data of the GOCE satellite. This is of reference significance for the updating of the existing models.

Funder

National Natural Science Foundation of China

National Key R&D Program of China

Open Fund of Hubei Luojia Laboratory

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

Reference54 articles.

1. European Space Agency (1999). Gravity Field and Steady-State Ocean-Circulation Mission, Report for Mission Selection of the Four Candidate Earth Explorer Missions, ESA Publications Division. Tech. Rep. 1999, ESA SP-1233.

2. Pail, R., Goiginger, H., Mayrhofer, R., Schuh, W.D., Brockmann, J.M., Krasbutter, I., and Fecher, T. (July, January 28). GOCE gravity field model derived from orbit and gradiometry data applying the time-wise method. Proceedings of the ESA Living Planet Symposium, Bergen, Norway.

3. First GOCE gravity field models derived by three different approaches;Pail;J. Geod.,2011

4. EGM_TIM_RL05: An independent geoid with centimeter accuracy purely based on the GOCE mission;Brockmann;Geophys. Res. Lett.,2014

5. An improved model of the Earth’s static gravity field solely derived from reprocessed GOCE data;Brockmann;Surv. Geophys.,2021

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