PWS

Plane Wave Synthesizer

Physical Layer →
Introduced in Rel-8 Also in: Services

PWS is a signal processing technique or device used in antenna array systems to generate uniform plane wave fronts for simplified channel estimation, calibration, and testing.

Category
Physical Layer
Introduced
Rel-8
Where
Radio Access Network › NG-RAN (5G)
Also touches
1 segments
Specifications
16 specs
PWS Description Purpose Detected Changes Specifications

Description

The Plane Wave Synthesizer (PWS) is a advanced methodology within 3GPP radio access networks, specifically relevant to Over-the-Air (OTA) testing, antenna calibration, and performance validation of large-scale antenna systems like Massive MIMO. It refers to a system or algorithm that creates an electromagnetic field resembling a plane wave—a wave with constant phase fronts across a defined area—in the vicinity of the antenna array under test. This is achieved by carefully controlling the amplitude and phase of signals fed to multiple probe antennas or array elements in a test chamber, such that their superposition produces a nearly uniform wavefront over the device under test (DUT). The PWS enables accurate characterization of beamforming patterns, gain, and efficiency without requiring direct cable connections to each antenna element, which is impractical for integrated arrays.

Architecturally, a PWS setup typically includes a vector signal generator, a multi-probe antenna array (often arranged in a circle or sphere around the DUT), and a control unit that computes the complex weights for each probe to synthesize the desired plane wave direction and polarization. Key components are the propagation channel emulator, which models the free-space path to the DUT, and the calibration system that ensures probe responses are known and compensated. In operational terms, the PWS works by solving an inverse problem: given the target plane wave parameters (e.g., angle of arrival, polarization), it calculates the excitation signals for the probes so that their radiated fields interfere constructively to form the plane wave at the DUT location. This involves digital signal processing techniques like precoding or beamforming algorithms, often implemented in FPGA or dedicated hardware for real-time performance.

In the context of 3GPP specifications, PWS techniques are employed for conformance testing and performance evaluation of UE and base station antennas, especially for FR2 (mmWave) frequencies where antenna arrays are highly integrated. The PWS facilitates standardized OTA testing methodologies defined in specs like 3GPP TR 38.810 and 38.141, allowing reproducible measurements of metrics like Total Radiated Power (TRP) and Total Isotropic Sensitivity (TIS). By synthesizing plane waves from multiple directions, it can emulate realistic multipath environments or specific beamforming scenarios, validating that the DUT's beam steering and tracking algorithms function correctly. Its role is critical for ensuring that Massive MIMO systems meet regulatory and performance requirements in a cost-effective manner, as it eliminates the need for bulky, expensive conducted test setups for each antenna port.

Purpose & Motivation

The Plane Wave Synthesizer was developed to address the challenges of testing and calibrating large antenna arrays, particularly for Massive MIMO and mmWave systems in 5G NR, where traditional conducted testing methods become infeasible. In these systems, antennas are integrated with RF front-ends, making individual port access difficult or impossible. Previous approaches relied on far-field ranges or compact antenna test ranges, which are large, expensive, and not scalable for mass production testing. The PWS provides a controlled, lab-based solution that synthesizes far-field conditions in a near-field setup, enabling accurate OTA measurements in a compact chamber.

Historically, as 3GPP advanced from LTE to 5G, the shift to higher frequencies (e.g., mmWave) and massive antenna counts necessitated new testing paradigms to validate beamforming performance and regulatory compliance. The PWS solves this by allowing manufacturers and test labs to emulate realistic radio environments and plane wave incidence, which is essential for evaluating beamforming gain, sidelobe levels, and spatial characteristics. It addresses limitations of earlier OTA methods that lacked precision in wavefront control, leading to measurement uncertainties. By standardizing PWS-based techniques in 3GPP specs, it ensures consistent and reproducible testing across the industry, supporting the deployment of reliable 5G devices and base stations. This is motivated by the need for cost-effective, high-volume testing to meet the demands of global 5G rollout.

Release Timeline

Detected Changes Across Releases

from 3GPP Change Requests

Specific changes extracted from the „Change history“ tables of 3GPP specifications (10 CRs across 5 releases). Complements the general historical overview above with the evidence-based evolution of this function.

Rel-15 2 changes

In Release 15, the PWS (Public Warning System) function was enhanced with clarifications and corrections to improve reliability. Specifically, the monitoring occasion for PWS notifications was clarified to ensure devices correctly listen for alerts. Additionally, corrections were made to the procedures for PWS reception to address potential errors in how warnings are received and processed.

  • Clarification to monitoring occasion of PWS notification TS 38.331CR0850
  • Correction to PWS reception TS 38.331CR1066
Rel-16 4 changes

In Release 16, the enhancements for the Plane Wave Synthesizer (PWS) function focused on procedural corrections and testing completeness. The work included essential corrections to the PWS procedures specifically for the 5G Core network (5GC). Furthermore, the release finalized the Multi-User (MU) terms and added necessary test cases to ensure robust implementation, as documented in the associated technical report.

  • Essential Corrections on PWS Procedures for 5GC TS 29.168CR0074
  • Mirror CR to TR 37.941: Completion of MU terms for PWS. TS 37.941CR0006
  • Mirror CR to TR 37.941: Additional test cases for PWS TS 37.941CR0022
  • Mirror CR to TR 37.941: Completion of MU terms for PWS. TS 37.941CR0024
Rel-17 2 changes

In Release 17, the key new development for PWS was the introduction of support for Public Warning System functionality in Standalone Non-Public Networks (SNPNs). This enhancement specifically addressed the provision of PWS within these isolated, private network deployments. The work included support for related procedures such as credential handling, onboarding, and IMS emergency services within the SNPN context.

  • Introducing NPN enhancements: Credential Holders, Onboarding, IMS emergency, and PWS support in SNPNs TS 38.300CR0414
  • PWS for Non-Public Networks TS 33.969CR0001
Rel-19 1 change

In Release 19, the Plane Wave Synthesizer (PWS) function was extended to support Internet of Things (IoT) applications over Non-Terrestrial Networks (NTN). This introduces the new capability of "PWS for IoT NTN," specifically enhancing the system to synthesize plane waves for IoT devices communicating via satellite networks.

Rel-20 1 change

In Release 20, the primary development for the Plane Wave Synthesizer (PWS) function involved clarifications to its existing specifications. This work was captured in a dedicated Change Request focused on providing these necessary clarifications. The update aimed to refine the technical understanding and implementation of the PWS feature without introducing new procedures or capabilities.

  • CR on PWS clarifications_R20 mirror TS 22.268CRSP-251505

Explore further

Broader topics and technologies where PWS plays a role.

Defining Specifications

3GPP specifications that define or reference PWS, with the latest known release. Sourced from the 3GPP document catalog — see methodology.

SpecificationTitleRelease
TR 21.905 vj00 3GPP Technical Terms and Definitions Rel-19
TS 22.268 vk00 Public Warning System (PWS) Requirements Rel-20
TR 22.968 vj00 Study on Public Warning System (PWS) Rel-19
TS 29.168 vj00 SBc-AP Protocol Specification Rel-19
TR 33.969 vj00 Security for Public Warning System (PWS) Rel-19
TS 36.300 vj00 E-UTRAN Radio Interface Protocol Architecture Overview Rel-19
TS 36.304 vj00 UE Idle Mode Procedures in E-UTRA Rel-19
TS 36.401 vj00 E-UTRAN Overall Architecture Description Rel-19
TS 36.410 vj00 S1 Interface: General Aspects and Principles Rel-19
TS 36.413 vj10 S1 Application Protocol (S1AP) Rel-19
TR 37.941 vj20 RF Conformance Testing Background for Radiated BS Requirements Rel-19
TS 38.141 vj20 NR Base Station RF Conformance Testing Part 1 Rel-19
TS 38.300 vj00 NG-RAN Overall Description Rel-19
TS 38.331 vj00 NR Radio Resource Control (RRC) Protocol Specification Rel-19
TS 38.401 vj10 NG-RAN Architecture Specification Rel-19
TR 38.882 vi00 Technical Report on UE Location Service Rel-18
Patrick Zandl

About the author: Patrick Zandl (b. 1974)

Telecommunications specialist, technology journalist (founder of the Mobil server), and developer who has been running since 2025 — the largest Czech-language resource on AI-assisted programming. Formerly Chief Wizard Architect at Prusa3D and head of development for Turris at CZ.NIC; currently a consultant and instructor on AI implementation in companies.