Title :
Probability Distribution of the Coherence Bandwidth of a Reverberation Chamber
Author :
Arnaut, Luk R. ; Gradoni, Gabriele
Author_Institution :
Sch. of Electron. Eng. & Comput. Sci., Queen Mary Univ. of London, London, UK
Abstract :
A theoretical probability distribution and associated statistics for the coherence bandwidth of an ideal mode-stirred reverberation chamber are derived. The stochastic model assumes and exploits the ergodicity of a dynamic wave chaotic cavity by expressing the coherence bandwidth in terms of the random effective excitation bandwidth and by replacing spatial averaging of transmitter-receiver locations with stir (ensemble) averaging. The theoretical model is validated through comparison with the empirical cumulative distribution function (cdf) extracted from measured S-parameter data from a real chamber, and through simulation using analytical calculations for a fictitious wall-stirred chamber. The results are particularly relevant to the improvement of transmission quality and uncertainty quantification of wireless multipath propagation.
Keywords :
S-parameters; chaos; reverberation chambers; statistical distributions; stochastic processes; cdf; coherence bandwidth; dynamic wave chaotic cavity; empirical cumulative distribution function; fictitious wall-stirred chamber; measured S-parameter data; mode-stirred reverberation chamber; probability distribution; random effective excitation bandwidth; stochastic model; transmitter-receiver locations; wireless multipath propagation; Bandwidth; Cavity resonators; Coherence; Delays; Reverberation chambers; Uncertainty; Wireless communication; Coherence bandwidth; coherence bandwidth; mode-stirred reverberation chambers; resonance width; stochastic electromagnetics; uncertainty quantification;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2403398