RSRQ

Reference Signal Receiving Quality

Radio Access Network →
Introduced in Rel-8

RSRQ is the ratio of reference signal received power (RSRP) to the total received power, providing an SINR-like metric for assessing radio link quality in mobile networks.

Category
Radio Access Network
Introduced
Rel-8
Where
Radio Access Network › NG-RAN (5G)
Specifications
32 specs
RSRQ Description Purpose Related Classification Detected Changes Specifications

Description

Reference Signal Receiving Quality (RSRQ) is a fundamental Layer 1 measurement in both LTE and 5G NR networks that quantifies the quality of the received cell-specific reference signals. It is defined as the ratio N * RSRP / (E-UTRA carrier RSSI), where N is the number of resource blocks (RBs) of the E-UTRA carrier RSSI measurement bandwidth. In simpler terms, RSRQ compares the power of the desired reference signals (RSRP) to the total received power, including interference and noise, within the same measurement bandwidth. This yields a dimensionless metric, typically reported in dB, that approximates a narrowband signal-to-interference-plus-noise ratio (SINR) for the reference signals.

From an architectural perspective, RSRQ measurement is performed by the User Equipment (UE). The network configures measurement objects, reporting configurations, and measurement gaps via RRC signaling. The UE measures the RSRP on the cell-specific reference signals (CRS in LTE, SSB or CSI-RS in NR) and the Received Signal Strength Indicator (RSSI) across the configured bandwidth. The physical layer performs these measurements, and the results are filtered (using L1 and L3 filtering) before being reported to higher layers. In LTE, RSRQ is a primary measurement for Radio Resource Management (RRM), including cell selection/reselection and handover. In NR, while SS-RSRQ (based on SSB) remains important, CSI-RSRQ has been introduced for more flexible quality assessment, especially in beamformed scenarios.

The role of RSRQ in the network is multifaceted. It provides a critical input for mobility algorithms. While RSRP indicates signal strength, RSRQ indicates how 'clean' that signal is. A cell with high RSRP but poor RSRQ may be heavily congested or suffering from strong interference, making it a less desirable candidate for connection. Therefore, network algorithms often use RSRQ (or its derivatives) to trigger handovers, manage load balancing, and configure cell reselection parameters. It is a more reliable indicator of potential user throughput and connection stability than RSRP alone, especially at cell edges where interference is predominant.

Purpose & Motivation

RSRQ was introduced in LTE Release 8 to solve a fundamental limitation of using only RSRP for radio resource management. RSRP alone indicates the strength of the signal from a serving or neighboring cell but does not account for the level of interference or the overall load on the channel. A cell could have a strong RSRP but be unusable due to excessive interference from neighboring cells operating on the same frequency (co-channel interference). This could lead to poor handover decisions, where a UE connects to a strong but heavily interfered cell, resulting in degraded user experience and dropped calls.

The creation of RSRQ provided a standardized, network-controlled metric that combines signal strength and interference into a single quality indicator. This allowed for more intelligent cell selection and handover, improving overall network performance, capacity, and user-perceived quality. Its purpose expanded in subsequent releases to support new features like Carrier Aggregation (where secondary cell selection considers quality), dual connectivity, and, in NR, to operate in conjunction with beam measurements. RSRQ remains a cornerstone measurement because it addresses the classic trade-off in cellular networks between signal strength and interference, enabling algorithms that optimize for both connectivity and quality of service.

Classification

Part ofSINR
Specific typesNRSRQWB-RSRQ
Related approachesRSRPRSSI

Release Timeline

Detected Changes Across Releases

from 3GPP Change Requests

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

Rel-15 1 change

In Release 15, a correction was made to the specified range for the RSRQ measurement. This update was documented in the technical specification 36.355.

  • Correction to RSRQ range in 36.355 TS 36.355CR0221
Rel-16 1 change

In Release 16, the primary change to the RSRQ function was the removal of measurements based on Received Signal Strength (RSS). This streamlined the measurement definition by eliminating the RSS-based RSRQ variant, leaving only the standard RSRQ calculation based on reference signal power.

  • Removal of RSS based RSRQ measurements TS 36.331CR4748
Rel-18 1 change

In Release 18, the enhancement for RSRQ specifically involved the addition of missing applicability to new test cases. This update focused on ensuring that SS-RSRQ measurements were correctly applicable for Reduced Capability (RedCap) devices within the defined testing procedures.

  • Addition of missing applicability to new SS-RSRQ RedCap test cases TS 38.522CR0393

Explore further

Broader topics and technologies where RSRQ plays a role.

Defining Specifications

3GPP specifications that define or reference RSRQ, 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 23.289 vk10 Mission Critical services over 5G System Rel-20
TR 23.730 ve00 Study on extended CIoT architecture Rel-14
TS 24.312 vj00 ANDSF Management Objects Specification 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 25.215 vj00 UTRA FDD Measurement Definitions Rel-19
TS 25.225 vj00 UTRA TDD Physical Layer Measurements Rel-19
TS 25.331 vj00 UTRAN RRC Protocol Specification Rel-19
TS 28.627 vj00 SON Policy NRM IRP: Requirements Rel-19
TS 28.628 vj00 SON Policy NRM IRP Information Service Rel-19
TS 32.425 vj00 E-UTRAN Performance Measurements Rel-19
TS 36.133 vj20 E-UTRA RRM Requirements Rel-19
TS 36.201 vj00 LTE Physical Layer General Description Rel-19
TS 36.214 vj00 E-UTRA Physical Layer Measurements Rel-19
TS 36.331 vj00 LTE RRC Protocol Specification Rel-19
TS 36.355 vj00 LTE Positioning Protocol (LPP) Rel-19
TS 36.809 vc00 Study on RF Pattern Matching for LTE Positioning Rel-12
TS 36.825 vd00 Study on Additional LTE TDD Configurations Rel-13
TS 36.842 vc00 Small Cell Enhancements for LTE Higher Layers Rel-12
TS 36.867 vd00 LTE DL 4 Rx Antenna Port Study TR Rel-13
TS 36.878 vd00 LTE Performance Enhancements for High Speed Scenarios Rel-13
TS 37.320 vj00 Minimization of Drive Tests (MDT) Overview Rel-19
TS 37.355 vj20 LTE Positioning Protocol (LPP) Rel-19
TS 37.870 vd00 Study on Multi-RAT Joint Coordination Rel-13
TS 38.101 vj31 NR User Equipment Radio Transmissions Rel-19
TS 38.300 vj00 NG-RAN Overall Description Rel-19
TS 38.305 vj00 NG-RAN UE Positioning Stage 2 Rel-19
TS 38.521 vj20 NR Physical Layer UE Conformance Testing Rel-19
TS 38.522 vj11 UE Conformance Test Applicability Statement Rel-19
TR 38.869 vi00 Study on low-power wake up signal and receiver for NR Rel-18
TR 38.889 vg00 NR-based access to unlicensed spectrum study Rel-16
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.