Power Scaling Laws and Near-Field Behaviors of Massive MIMO and Intelligent Reflecting Surfaces
arXiv:2002.04960 · doi:10.1109/OJCOMS.2020.3020925
Abstract
The use of large arrays might be the solution to the capacity problems in wireless communications. The signal-to-noise ratio (SNR) grows linearly with the number of array elements when using Massive MIMO receivers and half-duplex relays. Moreover, intelligent reflecting surfaces (IRSs) have recently attracted attention since these can relay signals to achieve an SNR that grows as , which seems like a major benefit. In this paper, we use a deterministic propagation model for a planar array of arbitrary size, to demonstrate that the mentioned SNR behaviors, and associated power scaling laws, only apply in the far-field. They cannot be used to study the regime where . We derive an exact channel gain expression that captures three essential near-field behaviors and use it to revisit the power scaling laws. We derive new finite asymptotic SNR limits but also conclude that these are unlikely to be approached in practice. We further prove that an IRS-aided setup cannot achieve a higher SNR than an equal-sized Massive MIMO setup, despite its faster SNR growth. We quantify analytically how much larger the IRS must be to achieve the same SNR. Finally, we show that an optimized IRS does not behave as an "anomalous" mirror but can vastly outperform that benchmark.
Published in IEEE Open Journal of the Communications Society, 18 pages, 11 figures. This version contains clarifications in Appendix A, regarding the rule-of-thumb at Page 5, and typo corrections in Example 1 and Corollary 9
References in corpus (8)
- Wireless Communications with Reconfigurable Intelligent Surface: Path Loss Modeling and Experimental Measurement
- Intelligent Reflecting Surface-Enhanced OFDM: Channel Estimation and Reflection Optimization
- Reconfigurable Intelligent Surfaces: Three Myths and Two Critical Questions
- Path Loss in Reconfigurable Intelligent Surface-Enabled Channels
- White Paper on Broadband Connectivity in 6G
- Enabling Large Intelligent Surfaces with Compressive Sensing and Deep Learning
- Massive MIMO is a Reality -- What is Next? Five Promising Research Directions for Antenna Arrays
- Utility-Based Precoding Optimization Framework for Large Intelligent Surfaces
Cited by in corpus (49)
- An Overview of Signal Processing Techniques for RIS/IRS-aided Wireless Systems
- Near-Field Communications: A Tutorial Review
- Rayleigh Fading Modeling and Channel Hardening for Reconfigurable Intelligent Surfaces
- RIS-Aided Wireless Communications: Prototyping, Adaptive Beamforming, and Indoor/Outdoor Field Trials
- Reconfigurable Intelligent Surfaces: A Signal Processing Perspective With Wireless Applications
- Reconfigurable Intelligent Surfaces: Three Myths and Two Critical Questions
- Path Loss in Reconfigurable Intelligent Surface-Enabled Channels
- White Paper on Broadband Connectivity in 6G
- Reconfigurable Intelligent Surface-Aided Near-field Communications for 6G: Opportunities and Challenges
- Reconfigurable Intelligent Surfaces: Bridging the gap between scattering and reflection
- Scoring the Terabit/s Goal:Broadband Connectivity in 6G
- PhysFad: Physics-Based End-to-End Channel Modeling of RIS-Parametrized Environments with Adjustable Fading
- Intelligent Reflecting Surface Operation under Predictable Receiver Mobility: A Continuous Time Propagation Model
- Modeling and Analysis of Near-Field ISAC
- Joint Optimization for RIS-Assisted Wireless Communications: From Physical and Electromagnetic Perspectives
- Distributed Reconfigurable Intelligent Surfaces for Energy Efficient Indoor Terahertz Wireless Communications
- A Comprehensive Study of Reconfigurable Intelligent Surfaces in Generalized Fading
- On the Spectral Efficiency of Multi-user Holographic MIMO Uplink Transmission
- Secure Beamforming in Multi-User Multi-IRS Millimeter Wave Systems
- Network Coexistence Analysis of RIS-Assisted Wireless Communications
- RIS-Enabled NLoS Near-Field Joint Position and Velocity Estimation under User Mobility
- Prospective Multiple Antenna Technologies for Beyond 5G
- IRS-enabled Breath Tracking with Colocated Commodity WiFi Transceivers
- Performance Comparison Between A Simple Full-Duplex Multi-Antenna Relay And A Passive Reflecting Intelligent Surface
- Communicating with Extremely Large-Scale Array/Surface: Unified Modelling and Performance Analysis
- Designing Wireless Powered Networks assisted by Intelligent Reflecting Surfaces with Mechanical Tilt
- Secrecy Rate Maximization in Multi-IRS Millimeter Wave Networks
- Reconfigurable Intelligent Surface Phase Hopping for Ultra-Reliable Communications
- Multi-Beam Multi-Hop Routing for Intelligent Reflecting Surfaces Aided Massive MIMO
- Reconfigurable Intelligent Surface: Design the Channel -- a New Opportunity for Future Wireless Networks
- Electromagnetic Model of Reflective Intelligent Surfaces
- Near-Field Multipath MIMO Channel Model for Imperfect Surface Reflection
- Joint Beamforming for STAR-RIS in Near-Field Communications
- Toward Autonomous Reconfigurable Intelligent Surfaces Through Wireless Energy Harvesting
- Power Efficiency, Overhead, and Complexity Tradeoff in IRS-Assisted Communications -- Quadratic Phase-Shift Design
- Physical Layer Security Enhancement With Reconfigurable Intelligent Surface-Aided Networks
- Optimal Dual-Polarized Planar Arrays for Massive Capacity Over Point-to-Point MIMO Channels
- Millimeter Wave Communications With Reconfigurable Intelligent Surface: Performance Analysis and Optimization
- A Received Power Model for Reconfigurable Intelligent Surface and Measurement-based Validations
- Physical Channel Modeling for RIS-Empowered Wireless Networks in Sub-6 GHz Bands
- Multi-User Communication with Extremely Large-Scale MIMO
- Optimal Transmit Antenna Deployment and Power Allocation for Wireless Power Supply in an Indoor Space
- Performance of Intelligent Reconfigurable Surface-Based Wireless Communications Using QAM Signaling
- Multiple Intelligent Reflecting Surface aided Multi-user Weighted Sum-Rate Maximization using Manifold Optimization
- Wireless Communication with Extremely Large-Scale Intelligent Reflecting Surface
- Hybrid Spherical- and Planar-Wave Channel Modeling and DCNN-powered Estimation for Terahertz Ultra-massive MIMO Systems
- Dimensioning an Indoor SISO RIS-system: Approximations and Equivalence Models
- Designing IRS-Aided MIMO Systems for Secrecy Enhancement
- Intelligent Reflecting Surface-Aided Wideband THz Communications: Modeling and Analysis