TY - JOUR
T1 - Holographic MIMO Communications With Arbitrary Surface Placements
T2 - Near-Field LoS Channel Model and Capacity Limit
AU - Gong, Tierui
AU - Wei, Li
AU - Huang, Chongwen
AU - Yang, Zhijia
AU - He, Jiguang
AU - Debbah, Merouane
AU - Yuen, Chau
N1 - Publisher Copyright:
© 1983-2012 IEEE.
PY - 2024/6/1
Y1 - 2024/6/1
N2 - Envisioned as one of the most promising tech- nologies, holographic multiple-input multiple-output (H-MIMO) recently attracts notable research interests for its great potential in expanding wireless possibilities and achieving fundamental wireless limits. Empowered by the nearly continuous, large and energy-efficient surfaces with powerful electromagnetic (EM) wave control capabilities, H-MIMO opens up the opportunity for signal processing in a more fundamental EM-domain, paving the way for realizing holographic imaging level communications in supporting the extremely high spectral efficiency and energy efficiency in future networks. In this article, we propose a generalized EM-domain near-field channel modeling and study its capacity limit of point-to-point H-MIMO systems that equips arbitrarily placed surfaces in a line-of-sight (LoS) environment. Two effective and computational-efficient channel models are established from their integral counterpart, where one is with a sophisticated formula but showcases more accurate, and another is concise with a slight precision sacrifice. Furthermore, we unveil the capacity limit using our channel model, and derive a tight upper bound based upon an elaborately built analytical framework. Our result reveals that the capacity limit grows logarithmically with the product of transmit element area, receive element area, and the combined effects of 1/d2 mn, 1/d4 mn, and 1/d6 mn over all transmit and receive antenna elements, where dmn indicates the distance between each transmit element n and receive element m. Particularly, 1/d6 mn dominates in the near-field region whereas 1/d2 mn dominates in the far-field region. Numerical evaluations validate the effectiveness of our channel models, and showcase the slight disparity between the upper bound and the exact capacity, which is beneficial for predicting practical system performance.
AB - Envisioned as one of the most promising tech- nologies, holographic multiple-input multiple-output (H-MIMO) recently attracts notable research interests for its great potential in expanding wireless possibilities and achieving fundamental wireless limits. Empowered by the nearly continuous, large and energy-efficient surfaces with powerful electromagnetic (EM) wave control capabilities, H-MIMO opens up the opportunity for signal processing in a more fundamental EM-domain, paving the way for realizing holographic imaging level communications in supporting the extremely high spectral efficiency and energy efficiency in future networks. In this article, we propose a generalized EM-domain near-field channel modeling and study its capacity limit of point-to-point H-MIMO systems that equips arbitrarily placed surfaces in a line-of-sight (LoS) environment. Two effective and computational-efficient channel models are established from their integral counterpart, where one is with a sophisticated formula but showcases more accurate, and another is concise with a slight precision sacrifice. Furthermore, we unveil the capacity limit using our channel model, and derive a tight upper bound based upon an elaborately built analytical framework. Our result reveals that the capacity limit grows logarithmically with the product of transmit element area, receive element area, and the combined effects of 1/d2 mn, 1/d4 mn, and 1/d6 mn over all transmit and receive antenna elements, where dmn indicates the distance between each transmit element n and receive element m. Particularly, 1/d6 mn dominates in the near-field region whereas 1/d2 mn dominates in the far-field region. Numerical evaluations validate the effectiveness of our channel models, and showcase the slight disparity between the upper bound and the exact capacity, which is beneficial for predicting practical system performance.
KW - arbitrary surface placement
KW - capacity limit
KW - channel modeling
KW - Holographic MIMO
KW - near-field LoS
UR - https://www.scopus.com/pages/publications/85182849392
U2 - 10.1109/JSAC.2024.3389126
DO - 10.1109/JSAC.2024.3389126
M3 - Article
AN - SCOPUS:85182849392
SN - 0733-8716
VL - 42
SP - 1549
EP - 1566
JO - IEEE Journal on Selected Areas in Communications
JF - IEEE Journal on Selected Areas in Communications
IS - 6
ER -