Title :
Movement of Equivalent Scatterers in Geometry-Based Stochastic Channel Models
Author :
Jost, Thomas ; Wang, Wei ; Fiebig, Uwe-Carsten ; Pérez-Fontán, Fernando
Author_Institution :
Inst. of Commun. & Navig., German Aerosp. Center (DLR), Wessling, Germany
fDate :
7/4/1905 12:00:00 AM
Abstract :
Channel models are widely used to test receiver algorithms and, therefore, should model the propagation behavior as completely as possible. A promising type of channel model is the geometry-based stochastic channel model (GSCM), which represents the propagation channel by placing equivalent scatterers (ES) within a simulated geometry. Each of these ES is associated to a propagation path between the transmitter and the receiver. The propagation length of a modeled path can be calculated in a straightforward manner knowing the ES, the transmitter, and receiver locations by simple distance calculations. If the receiver is moving, an ES may change its location in order to model a propagation path accurately. However, this movement has not been sufficiently taken into account so far. Within this contribution, we show that the movement of an ES lies on a trajectory described by an ellipse or hyperbola when the receiver is in motion. Based on this derivation, a modeling approach for a propagation path resulting from multiple reflections is given, where at least one reflector is geometrically static in its position. Our description supports the simulation of an arbitrary receiver movement. Finally, we provide an example from an outdoor-to-indoor measurement campaign that confirms the movement of the ES.
Keywords :
indoor communication; radio receivers; radio transmitters; stochastic processes; wireless channels; arbitrary receiver movement simulation; equivalent scatterer movement; geometry-based stochastic channel model; outdoor-to-indoor measurement campaign; propagation behavior; simulated geometry; transmitter; Antenna measurements; Channel models; IP networks; Receiving antennas; Trajectory; Transmitters; Channel model; dynamic channel; ellipse; equivalent scatterer trajectory; geometry-based stochastic channel model (GSCM); receiver movement;
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2012.2199072