Title :
Modeling of Reverberant Radio Channels Using Propagation Graphs
Author :
Pedersen, Troels ; Steinböck, Gerhard ; Fleury, Bernard H.
Author_Institution :
Dept. of Electron. Syst., Aalborg Univ., Aalborg, Denmark
Abstract :
In measurements of in-room radio channel responses, an avalanche effect can be observed: earliest signal components, which appear well separated in delay, are followed by an avalanche of components arriving with increasing rate of occurrence, gradually merging into a diffuse tail with exponentially decaying power. We model the channel as a propagation graph in which vertices represent transmitters, receivers, and scatterers, while edges represent propagation conditions between vertices. The recursive structure of the graph accounts for the exponential power decay and the avalanche effect. We derive a closed-form expression for the graph´s transfer matrix. This expression is valid for any number of interactions and is straightforward to use in numerical simulations. We discuss an example where time dispersion occurs only due to propagation in between vertices. Numerical experiments reveal that the graph´s recursive structure yields both an exponential power decay and an avalanche effect.
Keywords :
avalanche diodes; delays; wireless channels; avalanche effect; closed-form expression; delay; exponential power decay; propagation graphs; reverberant radio channels; signal components; Computational modeling; Delay; Receivers; Scattering; Transfer functions; Transmitters; Vectors; Channel impulse response; indoor radio channels; multiple scattering; radio channels; reverberation; signal flow graphs;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2012.2214192