TY - JOUR
T1 - Comparison of Plane Wave and Spherical Vector Wave Channel Modeling for Characterizing Non-Specular Rough-Surface Wave Scattering
AU - Miao, Yang
AU - Takada, Jun Ichi
AU - Saito, Kentaro
AU - Haneda, Katsuyuki
AU - Alayon Glazunov, Andres
AU - Gong, Yi
PY - 2018/10
Y1 - 2018/10
N2 - This letter demonstrates advantages of modeling the nonspecular wave scattering from surfaces of a multiple-input multiple-output (MIMO) channel in terms of the spherical vector wave (SVW) mode expansion. We propose the SVW mode coupling matrix M as a more efficient alternative to the commonly used set of distinct plane waves. M incorporates the scattered field components through the limited number of modes due to the cut-off property. A planar surface with random roughness is used to simulate the nonspecular scattering contribution to the radio channel, which is computed using physical optics. The matrix M and the plane wave channel model parameters are estimated from simulated radio channels. The estimates are used to compare the contribution of the nonspecular scattering to the radio channel reproduced from these two approaches. The comparison is performed for a small array antenna arrangement. Compared are the error of the magnitudes of MIMO channel transfer matrix, the narrowband channel eigenvalues, the correlation matrix distance and the mutual information. It is found that M from the SVW channel modeling performs better in reproducing the radio channel of nonspecular scattering from the studied rough surface.
AB - This letter demonstrates advantages of modeling the nonspecular wave scattering from surfaces of a multiple-input multiple-output (MIMO) channel in terms of the spherical vector wave (SVW) mode expansion. We propose the SVW mode coupling matrix M as a more efficient alternative to the commonly used set of distinct plane waves. M incorporates the scattered field components through the limited number of modes due to the cut-off property. A planar surface with random roughness is used to simulate the nonspecular scattering contribution to the radio channel, which is computed using physical optics. The matrix M and the plane wave channel model parameters are estimated from simulated radio channels. The estimates are used to compare the contribution of the nonspecular scattering to the radio channel reproduced from these two approaches. The comparison is performed for a small array antenna arrangement. Compared are the error of the magnitudes of MIMO channel transfer matrix, the narrowband channel eigenvalues, the correlation matrix distance and the mutual information. It is found that M from the SVW channel modeling performs better in reproducing the radio channel of nonspecular scattering from the studied rough surface.
KW - Antenna arrays
KW - Channel estimation
KW - distinct plane waves
KW - nonspecular wave scattering
KW - Optical surface waves
KW - Radio propagation channel
KW - Rough surfaces
KW - Scattering
KW - spherical vector wave mode coupling
KW - Surface roughness
KW - Surface waves
UR - http://www.scopus.com/inward/record.url?scp=85052839569&partnerID=8YFLogxK
U2 - 10.1109/LAWP.2018.2868108
DO - 10.1109/LAWP.2018.2868108
M3 - Article
AN - SCOPUS:85052839569
SN - 1536-1225
VL - 17
SP - 1847
EP - 1851
JO - IEEE Antennas and Wireless Propagation Letters
JF - IEEE Antennas and Wireless Propagation Letters
IS - 10
ER -