CW

Continuous Wave

Physical Layer →
Introduced in R99 Also in: Services, User Equipment

CW is a continuous, unmodulated radio frequency carrier wave used as a fundamental reference signal for testing, calibrating, and verifying transmitter and receiver performance in 3GPP systems.

Category
Physical Layer
Introduced
R99
Where
Radio Access Network › NG-RAN (5G)
Also touches
2 segments
Specifications
77 specs
CW Description Purpose Related Specifications

Description

A Continuous Wave (CW) is a fundamental electromagnetic signal characterized by a constant amplitude and frequency over time, devoid of any modulation. In the context of 3GPP specifications, CW signals are not used for carrying user data or control information but are essential tools for testing and characterizing the radio frequency (RF) components of User Equipment (UE) and base stations (e.g., NodeB, eNB, gNB). The primary application is in conformance testing, where a CW signal is generated by a test system and used to evaluate key RF performance parameters of the device under test (DUT).

From a technical perspective, the CW signal acts as a pure tone at a specific carrier frequency. This simplicity allows for the isolation and measurement of fundamental hardware characteristics without the complexity introduced by modulation schemes like QPSK or 256-QAM. Key performance tests using CW include measuring transmitter output power accuracy, assessing receiver reference sensitivity level, and evaluating local oscillator leakage and spurious emissions. The signal's stability is paramount; any phase noise or frequency drift in the CW source would directly translate into measurement errors, making high-precision signal generators a core component of the test setup.

The role of CW extends across the entire lifecycle of radio equipment, from R&D and type approval to production line testing and field maintenance. 3GPP technical specifications (TS), particularly the 36.521 and 38.521 series for LTE and NR UE conformance testing, mandate specific test cases using CW signals. For example, to test a UE's maximum output power, the test system commands the UE to transmit a CW on a single physical resource block (PRB), and the power is measured using a power meter or a spectrum analyzer. Similarly, receiver tests often involve applying a CW signal at the UE's antenna connector to determine the minimum signal level at which the receiver can achieve a specified bit error rate (BER) or block error rate (BLER).

Architecturally, the CW is generated external to the UE or base station by standardized test equipment. The interface is typically the RF antenna connector. The DUT's internal components—such as its power amplifier, low-noise amplifier, filters, and mixers—are stimulated by this pure signal. Their performance is then gauged by analyzing the signal after it passes through these components (for transmitter tests) or by analyzing the DUT's ability to detect and process the incoming CW (for receiver tests). This provides a baseline understanding of the analog RF front-end's performance before more complex modulated signal tests are conducted.

In summary, the Continuous Wave is a cornerstone of RF performance validation in 3GPP networks. Its unmodulated nature provides a controlled and repeatable stimulus that enables precise quantification of the most basic yet critical characteristics of radio hardware, ensuring that all devices deployed in the network meet stringent quality and interoperability standards.

Purpose & Motivation

The purpose of specifying and using Continuous Wave signals in 3GPP standards is to establish a fundamental, unambiguous reference for radio frequency performance testing. Before the advent of complex digital modulation schemes used in cellular communications, CW was the primary signal used in radio engineering. Its incorporation into 3GPP specifications provides a timeless and technology-agnostic method to verify the analog performance of RF components, which is independent of the specific air interface (e.g., WCDMA, OFDMA). This allows for the isolation of hardware impairments from protocol or digital signal processing issues.

The core problem CW testing solves is the need for accurate and repeatable characterization of transmitter and receiver hardware. Modulated signals contain varying power levels and spectral characteristics, which can obscure the measurement of fundamental parameters like absolute output power or receiver noise floor. By using a pure, stable CW, test engineers can obtain baseline measurements of key metrics such as power accuracy, spectral purity (e.g., unwanted emissions), and sensitivity. This is crucial for ensuring that devices from different manufacturers interoperate reliably and do not cause harmful interference in the network.

Historically, the reliance on CW for foundational testing addresses the limitations of solely using modulated signal tests, which can be influenced by implementation-specific digital algorithms. CW provides a common 'ground truth.' Its specification across dozens of 3GPP technical documents, from the early 3G (R99) specifications to the latest 5G NR (Rel-20) specs, underscores its enduring role. It motivates equipment designers to meet basic RF performance floors, forming the essential foundation upon which all higher-layer communication protocols and advanced features are built.

Evolution Across Releases

Explore further

Broader topics and technologies where CW plays a role.

Defining Specifications

3GPP specifications that define or reference CW, 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 22.173 vk00 IMS Multimedia Telephony Service Definition Rel-20
TS 22.273 v1700 IMS Multimedia Telephony with PSTN/ISDN Simulation Rel-7
TS 22.401 v1800 Videotelephony Service Requirements for NGN Rel-8
TS 23.018 vj00 Basic call handling in 3GPP CS domain Rel-19
TS 24.186 vj60 IMS Data Channel applications Rel-19
TS 24.196 vj00 Enhanced Calling Name (eCNAM) Stage 3 Protocol Rel-19
TS 24.292 vj00 IMS Centralized Services (ICS) Protocol Rel-19
TS 24.407 v830 OIP and OIR Simulation Services Protocol Rel-8
TS 24.416 v1700 Malicious Call Identification Service Rel-7
TS 24.447 v800 Advice Of Charge (AOC) Service Protocol Rel-8
TS 24.516 v830 MCID Protocol Specification for NGN Rel-8
TS 24.607 vj10 OIP and OIR Supplementary Services Stage 3 Rel-19
TS 24.615 vj00 Communication Waiting (CW) Service Protocol Rel-19
TS 24.616 vj00 Malicious Call Identification (MCID) Protocol Rel-19
TS 24.642 vj00 CCBS/CCNR/CCNL SIP Protocol Specification Rel-19
TS 24.647 vj00 Advice of Charge (AOC) service protocol Rel-19
TS 25.101 vj00 UTRA FDD UE RF Requirements Rel-19
TS 25.102 vj00 UTRA TDD RF Characteristics Rel-19
TS 25.103 v1100 RF Requirements for RRM R99
TS 25.104 vj00 UTRA FDD Base Station RF Characteristics Rel-19
TS 25.105 vj00 UTRA TDD Base Station RF Requirements Rel-19
TS 25.111 vj00 LMU RF Characteristics for UTRA FDD Rel-19
TS 25.123 vj00 Radio Resource Management for TDD Rel-19
TS 25.133 vj00 UTRAN RRM Requirements for FDD Rel-19
TS 25.141 vj00 UTRA FDD Base Station RF Conformance Testing Rel-19
TS 25.143 vj00 UTRA FDD Repeater RF Test Requirements Rel-19
TS 25.153 vj00 LCR TDD Repeater RF Requirements & Testing Rel-19
TS 29.165 vj10 Inter-IMS Network to Network Interface (NNI) Rel-19
TS 29.364 vj10 IMS AS Service Data Descriptions Rel-19
TS 29.827 vg00 Policy and Charging for Volume Based Charging Rel-16
TS 29.864 v801 Application Server Service Data Definition for IMS Telephony Rel-8
TS 32.275 vj00 MMTel Charging Specification Rel-19
TS 32.850 ve00 IMS Charging Correlation Methods Study Rel-14
TS 34.124 vj00 EMC Requirements for 3G UTRA Terminals Rel-19
TS 36.101 vj30 LTE UE Radio Transmission & Reception Requirements Rel-19
TS 36.102 vj10 E-UTRA UE Satellite Access RF Requirements Rel-19
TS 36.104 vj10 Base Station (BS) radio transmission and reception Rel-19
TS 36.108 vj10 Satellite Access Node RF Requirements Rel-19
TS 36.116 vj00 E-UTRA Relay RF Requirements Rel-19
TS 36.117 vj00 E-UTRA Relay RF Test Methods & Requirements Rel-19
TS 36.124 vj00 EMC for E-UTRA User Equipment Rel-19
TS 36.141 vj00 E-UTRA BS Conformance Testing Rel-19
TS 36.181 vj30 E-UTRA RF Test Methods for Satellite Access Node Rel-19
TS 36.521 vj00 E-UTRA UE Conformance ICS Proforma Rel-19
TS 36.755 vf00 US 600 MHz LTE Band 71 Technical Report Rel-15
TS 36.761 vf00 Extended-Band 12 Study Report Rel-15
TS 36.790 vf00 LAA/eLAA for CBRS 3.5GHz Band in US Rel-15
TR 36.791 vg00 E-UTRA 2.4 GHz TDD Band for US Rel-16
TS 36.833 3GPP TR 36.833 R99
TS 37.104 vj10 MSR Base Station RF Characteristics Rel-19
TS 37.105 vj10 AAS Base Station Transmission & Reception Requirements Rel-19
TS 37.141 vj10 RF Test Methods for Multi-Standard Radio Base Stations Rel-19
TS 37.145 vj10 AAS Base Station Conducted Conformance Testing Rel-19
TS 37.802 va10 MSR BS RF Requirements for Non-Contiguous Spectrum Rel-10
TS 37.808 vc00 PIM Handling for Base Stations Study Rel-12
TS 37.812 vb30 Multi-band Multi-standard Radio BS Requirements Rel-11
TS 37.814 vc00 L-band Supplemental Downlink for UTRA/E-UTRA Rel-12
TR 37.900 vj00 Multi-Standard Radio (MSR) Base Station Requirements Rel-19
TS 38.101 vj31 NR User Equipment Radio Transmissions Rel-19
TS 38.104 vj20 NR Base Station RF Requirements Rel-19
TS 38.108 vj20 NTN NR Satellite Access Node RF Requirements Rel-19
TS 38.115 vj20 NR Repeater RF Conformance Testing Part 1 Rel-19
TS 38.141 vj20 NR Base Station RF Conformance Testing Part 1 Rel-19
TS 38.151 vj00 NR UE MIMO OTA Performance Requirements Rel-19
TS 38.174 vj10 NR Integrated Access and Backhaul Radio Spec Rel-19
TS 38.176 vj20 IAB Conformance Testing Specification Rel-19
TS 38.181 vj10 NR Satellite Access Node RF Testing Rel-19
TS 38.521 vj20 NR Physical Layer UE Conformance Testing Rel-19
TS 38.551 vi30 User Equipment (UE) Multiple Input Multiple Output (MIMO) Over-the-Air (OTA) performance Rel-18
TS 38.741 vj00 NTN L-/S-band for NR Technical Specification Rel-19
TS 38.761 vj00 MIMO OTA Performance Measurements for UE Rel-19
TS 38.762 vj00 Dynamic MIMO OTA Test Methodology for NR FR1 Rel-19
TR 38.808 vh00 Study on NR above 52.6 GHz to 71 GHz Rel-17
TS 38.863 vj10 NR NTN RF and Co-existence Spec Rel-19
TS 38.870 vj20 Enhanced OTA Test Methods for NR FR1 TRP/TRS Rel-19
TR 38.892 vi00 Technical Report 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.