Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain

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Original languageEnglish
Title of host publicationObserving our Changing Earth - Proceedings of the 2007 IAG General Assembly
Pages345-352
Number of pages8
Publication statusPublished - 1 Dec 2009
Event24th General Assembly of the International Union of Geodesy and Geophysics, IUGG 2007 - Perugia, Italy
Duration: 2 Jul 200713 Jul 2007

Publication series

NameInternational Association of Geodesy Symposia
Volume133
ISSN (Print)0939-9585

Abstract

With the upcoming Esa satellite mission Goce, all components of the gravitational tensor (2nd derivatives of the Earth's gravitational potential) will be measured globally except of the polar gaps. The highest accuracy level within the measurement bandwidth (Mbw, 5-100 mHz) is 11 mE/√Hz for the diagonal components of the tensor (1 mE = 10-121/s2). To meet this accuracy level, the gradiometer will be calibrated and evaluated internally as well as externally. One strategy of an external evaluation includes the use of a global geopotential model in combination with ground gravity data upward continued to satellite altitude In this study an error estimation for the external reference data is carried out (a) statistically by applying least-squares collocation and (b) empirically in a synthetic environment including (correlated and uncorrelated) noise. The use of synthetic data permits a closed-loop validation in all points. The spectral combination method based on integral formulas with a modified kernel function is applied to compute all components of the tensor. The closed-loop differences are analysed in the space and in the frequency domain. The dependency of the prediction error on the characteristics of the input data (noise level, area size and resolution) is shown. An accuracy below the required level of 11 mE/√Hz can be reached combining gravity anomalies with a noise level of 1 mGal and current global geopotential models.

Keywords

    Satellite gradiometry, Spectral combination, Synthetic Earth model

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Cite this

Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain. / Wolf, K. I.; Müller, J.
Observing our Changing Earth - Proceedings of the 2007 IAG General Assembly. 2009. p. 345-352 (International Association of Geodesy Symposia; Vol. 133).

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Wolf, KI & Müller, J 2009, Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain. in Observing our Changing Earth - Proceedings of the 2007 IAG General Assembly. International Association of Geodesy Symposia, vol. 133, pp. 345-352, 24th General Assembly of the International Union of Geodesy and Geophysics, IUGG 2007, Perugia, Italy, 2 Jul 2007. https://doi.org/10.1007/978-3-540-85426-5_41
Wolf, K. I., & Müller, J. (2009). Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain. In Observing our Changing Earth - Proceedings of the 2007 IAG General Assembly (pp. 345-352). (International Association of Geodesy Symposia; Vol. 133). https://doi.org/10.1007/978-3-540-85426-5_41
Wolf KI, Müller J. Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain. In Observing our Changing Earth - Proceedings of the 2007 IAG General Assembly. 2009. p. 345-352. (International Association of Geodesy Symposia). doi: 10.1007/978-3-540-85426-5_41
Wolf, K. I. ; Müller, J. / Accuracy Analysis of External Reference Data for GOCE Evaluation in Space and Frequency Domain. Observing our Changing Earth - Proceedings of the 2007 IAG General Assembly. 2009. pp. 345-352 (International Association of Geodesy Symposia).
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