GPS-derived geoid using artificial neural network and least squares collocation

Bojan Stopar in Tomaž Ambrožič in Miran Kuhar in Goran Turk (2006) GPS-derived geoid using artificial neural network and least squares collocation. Survey Review , 38 (300). str. 513-524. ISSN 0039-6265

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    The geoidal undulations are needed for determining the orthometric heights from the Global Positioning System GPS-derived ellipsoidal heights. There ore several methods for geoidal undulation determination. The paper presents a method employing the Artificial Neural Network (ANN) approximation together with the Least Squares Collocation (LSC). The surface obtained by the ANN approximation is used as a trend surface in the least squares collocation. In numerical examples four surfaces were compared: the global geopotential model (EGM96), the European gravimetric quasigeoid 1997 (EGG97), the surface approximated with minimum curvature splines in tension algorithm and the ANN surface approximation. The effectiveness of the ANN surface approximation depends on the number of control points. If the number of well-distributed control points is sufficiently large, the results are better than those obtained by the minimum curvature algorithm and comparable to those obtained by the EGG97 model.

    Vrsta dela: Članek
    Ključne besede:
    Povezava na COBISS: http://www.cobiss.si/scripts/cobiss?command=search&base=50057&select=(ID=3080289)
    Ustanova: Univerza v Ljubljani
    Fakulteta: Fakulteta za gradbeništvo in geodezijo
    Katedre: Fakulteta za gradbeništvo in geodezijo > Oddelek za geodezijo > Katedra za geodezijo (KG)
    Fakulteta za gradbeništvo in geodezijo > Oddelek za geodezijo > Katedra za matematično in fizikalno geodezijo ter navigacijo (KMFGN)
    Fakulteta za gradbeništvo in geodezijo > Oddelek za gradbeništvo > Katedra za mehaniko (KM)
    ID vnosa: 3374
    URI: http://drugg.fgg.uni-lj.si/id/eprint/3374

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