Title :
The Jacobi MIMO Channel
Author :
Dar, Ronen ; Feder, Meir ; Shtaif, Mark
Author_Institution :
Sch. of Electr. Eng., Tel Aviv Univ., Ramat Aviv, Israel
Abstract :
This paper presents a new fading model for multi-input multi-output channels: the Jacobi fading model. It asserts that H, the transfer matrix which couples the mt inputs into mr outputs, is a submatrix of an m × m random (Haar-distributed) unitary matrix. The (squared) singular values of H follow the law of the classical Jacobi ensemble of random matrices, hence the name of the channel. One motivation to define such a channel comes from multimode/multicore optical fiber communication. It turns out that this model can be qualitatively different from the Rayleigh model, leading to interesting practical and theoretical results. This paper first evaluates the ergodic capacity of the channel. Then, it considers the nonergodic case, where it analyzes the outage probability and the diversity-multiplexing tradeoff. In the case where k=mt+mr-m > 0, it is shown that at least k degrees of freedom are guaranteed not to fade for any channel realization, enabling a zero-outage probability or infinite diversity order at the corresponding rates. A simple scheme utilizing (a possibly outdated) channel state feedback is provided, attaining the no-outage guarantee. Finally, noting that as m increases, the Jacobi model approaches the Rayleigh model, the paper discusses the applicability of the model in other communication scenarios.
Keywords :
Jacobian matrices; MIMO communication; Rayleigh channels; channel capacity; Jacobi MIMO channel; Jacobi fading model; Rayleigh model; channel ergodic capacity; channel state feedback; classical Jacobi ensemble; diversity-multiplexing tradeoff; infinite diversity order; multiinput multioutput channels; multimode-multicore optical fiber communication; nonergodic case; random unitary matrix; submatrix; transfer matrix; zero-outage probability; Eigenvalues and eigenfunctions; Jacobian matrices; MIMO; Optical crosstalk; Optical fiber communication; Transmission line matrix methods; Vectors; Diversity-multiplexing tradeoff; Jacobi channel; MIMO channel; Rayleigh fading; ergodic capacity; fading model; optical fiber communication; outage probability; space-division-multiplexing;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2012.2233860