2007/02/13 by Bastiaan Michielsen, Bastiaan L. Michielsen, Francois Issac +7
Engineering · Mathematics · Physics and Astronomy · #62P35 #Electromagnetic Scattering and Analysis #FOS: Mathematics #FOS: Physical sciences #Mathematical Physics (math-ph) #Nuclear physics research studies #Quantum chaos and dynamical systems #Radar Systems and Signal Processing #Statistics Theory (math.ST) #math-ph #math.MP #math.ST #msc:62P35 #stat.TH
paper · pdf · doi:10.48550/arxiv.math-ph/0702041
arxiv created 2007/02/13 · openalex publication_date 2007/02/13 · arxiv updated 2011/11/10 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
Some recent publications by authors from the University of Maryland analyse the fluctuations of multi-port model parameters in stochastic environments. These authors use random matrix theory (RMT) for estimates concerning eigenfunction expansions in cavities which show so-called ``wave chaos.'' A universal relation between the variances of the fluctuations of multi-port impedance parameters, of the same type as we had observed experimentally for scattering parameters in mode stirred chambers, is analysed in detail. However, contrary to our own observations, these recent papers claim that only the impedance fluctuations satisfy universal variance ratios. In the present paper, we detail our own approach to the problem which is based on electromagnetic scattering theory. It is shown that universal variance ratios are obtained, for any type of multi-port model, when the environment of the multi-port system is described by a scattering operator, which is statistically isotropic in a sense we make precise below. The only condition on the system is that the radiation power correlation between the ports considered vanishes. This is to be compared to the diagonality of the radiation impedance required for the Maryland results to be valid.