Skip to content
Preprint

Has The Physical Layer Matured?

Sep 2026 · 0 citations · 71 references
Computer Science

TL;DR

The PHY layer is therefore not dead; its most consequential advances will come from deployable spatial processing and CSI acquisition, complemented by targeted link-level and AI/ML-based refinements.

Abstract

The wireless physical (PHY) layer has enabled successive generations of cellular systems through advances in modulation, coding, waveforms, and multiple-input multiple-output (MIMO) transmission. This article assesses whether these techniques are now approaching maturity and where substantial further gains remain possible. Field measurements and quantitative evaluations indicate that many link-level refinements, including constellation shaping, channel-code evolution, reduced-complexity receivers, and waveform enhancements, remain valuable but typically provide bounded gains that must be balanced against implementation complexity and overhead. In contrast, massive MIMO and distributed MIMO offer a more scalable system-level opportunity by increasing the number and quality of usable spatial channels. Their effectiveness relies on time-division duplex reciprocity for scalable channel state information (CSI) acquisition, while practical limitations include calibration, pilot reuse, channel aging, weak pilot reception from cell-edge users, and the fronthaul and synchronization requirements of coherent distributed operation. Artificial intelligence and machine learning (AI/ML) provide complementary opportunities for further PHY layer innovations. The PHY layer is therefore not dead; its most consequential advances will come from deployable spatial processing and CSI acquisition, complemented by targeted link-level and AI/ML-based refinements.

View source

Similar papers

Conference Aug 2026

Achievable Rate Analysis of Non-Ideal Cell-Free Massive MIMO Systems with RSMA

Cell-free massive multiple-input multiple-output (CF-mMIMO) is a promising architecture for future wireless networks, yet its practical deployment is severely hindered by hardware impairments and time-varying channel conditions. To address these challenges, we investigate downlink transmission in a rate-splitting multi...

Le-Chen Li, Yao Zhang, Wenchao Xia et al. · 0 citations
Sep 2026

Sampling-Level Time-Division Multiplexing for Fully Connected MIMO Transmitters: Principle and Prototype Verification

Multiple-input multiple-output (MIMO) systems and multibeam phased arrays are essential for modern wireless communications. Conventional fully connected (FC) beamformers achieve the maximum array gain but rely on cross-connection networks with numerous phase shifters, leading to high power consumption and implementatio...

Yi-Qiu Liang, Hong-Ji Fan, Wei-Heng Chen et al. · 0 citations
Open access Aug 2026

Transform-Aided Performance Enhancement in Massive MIMO-OTFS Systems over Various Fading Channels

This paper focuses on the improvement of the Massive MIMO-based OTFS systems by implementing the systems using more advanced signal transforms such as Discrete Wavelet Transform and Fractional Fourier Transform under various fading channels.

Arashid Ah.Bhat, L. Kansal · 0 citations
2026

Performance Analysis of Repeater-Assisted Massive MIMO Systems With Asynchronous Reception

Repeater-assisted massive MIMO (RA-MIMO) provides a cost-effective solution for distributed macro-diversity without the high-capacity fronthaul of cell-free architectures. However, the distributed deployment of repeaters introduces propagation delay differences and timing misalignments, causing asynchronous reception a...

Peng-Zhe Xin, Wan-Qing Cao, Yue Wu et al. · 0 citations
Open access Sep 2026

A system-level simulation framework for performance evaluation of ultra-dense wireless networks

: Accurate evaluation of radio access performance is essential for the design and optimization of ultra-dense fifth-generation (5G) networks, where the interactions between multiple users, base stations, and interference sources become highly complex. This paper proposes a comprehensive System-Level Simulation (SLS) fr...

T. Van Le, Nam Van Dinh, Ngoc-Thanh Nguyen et al. · 0 citations
Preprint Sep 2026

Physical-Layer Aspects of Repeater-Assisted MIMO

Network-controlled repeaters (NCRs) are emerg- ing as low-cost, band-selective active scatterers that can re- shape the wireless propagation environment without backhaul or tight phase synchronization. We study physical-layer design for repeater-assisted multiple-input multiple-output (RA-MIMO) networks, such as hardwa...

D. P. M. Osorio, Kohei Ueda, A. Chowdhury et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.