International audienceIn this article we model a Global Navigation Satellite System (GNSS) in a Schwarzschild space-time, as a first approximation of the relativistic geometry around the Earth. The closed time-like and scattering light-like geodesics are obtained analytically, describing respectively trajectories of satellites and electromagnetic signals. We implement an algorithm to calculate Schwarzschild coordinates of a GNSS user who receives proper times sent by four satellites, knowing their orbital parameters; the inverse procedure is implemented to check for consistency. The constellation of satellites therefore realizes a geocentric inertial reference system with no a priori realization of a terrestrial reference frame. We perform ...
GNSS, or more precisely GNSS-2, is an abbreviation for Glob al Navigation Satellite Systems – Second...
Highly accurate time and frequency synchronization is crucial for navigation. Constant improvements ...
[EN] For more than a decade our research team has been working in the framework of Relativistic Posi...
International audienceIn this article we model a Global Navigation Satellite System (GNSS) in a Schw...
Los sistemas satelitales de navegación global (GNSS por sus siglas en inglés) actualmente funcionan ...
Current GNSS systems rely on global reference frames which are fixed to the Earth (via the ground st...
The theory of relativistic location systems is sketched. The more important class of these systems a...
Study of the trajectories of the motion of satellites remains an urgent task for modern science. Thi...
International audienceCurrent GNSS systems rely on global reference frames which are fixed to the Ea...
Study of the trajectories of the motion of satellites remains an urgent task for modern science. Thi...
Subject review The base of knowledge of relativistic effects on satellite navigation is presented th...
The DLR Institute for Communication and Navigation is currently working on a system architecture tha...
This paper explores the history, development, structure, and function of Global Navigation Satellite...
Clock synchronization is the backbone of applications such as high-accuracy satellite navigation, ge...
The Global Positioning System (GPS) uses accurate, stable atomic clocks in satellites and on the gro...
GNSS, or more precisely GNSS-2, is an abbreviation for Glob al Navigation Satellite Systems – Second...
Highly accurate time and frequency synchronization is crucial for navigation. Constant improvements ...
[EN] For more than a decade our research team has been working in the framework of Relativistic Posi...
International audienceIn this article we model a Global Navigation Satellite System (GNSS) in a Schw...
Los sistemas satelitales de navegación global (GNSS por sus siglas en inglés) actualmente funcionan ...
Current GNSS systems rely on global reference frames which are fixed to the Earth (via the ground st...
The theory of relativistic location systems is sketched. The more important class of these systems a...
Study of the trajectories of the motion of satellites remains an urgent task for modern science. Thi...
International audienceCurrent GNSS systems rely on global reference frames which are fixed to the Ea...
Study of the trajectories of the motion of satellites remains an urgent task for modern science. Thi...
Subject review The base of knowledge of relativistic effects on satellite navigation is presented th...
The DLR Institute for Communication and Navigation is currently working on a system architecture tha...
This paper explores the history, development, structure, and function of Global Navigation Satellite...
Clock synchronization is the backbone of applications such as high-accuracy satellite navigation, ge...
The Global Positioning System (GPS) uses accurate, stable atomic clocks in satellites and on the gro...
GNSS, or more precisely GNSS-2, is an abbreviation for Glob al Navigation Satellite Systems – Second...
Highly accurate time and frequency synchronization is crucial for navigation. Constant improvements ...
[EN] For more than a decade our research team has been working in the framework of Relativistic Posi...