Description
Radio Link Monitoring (RLM) is a fundamental physical layer procedure performed by the User Equipment (UE) in both LTE and NR systems. Its primary function is to continuously evaluate the quality of the downlink radio link from the serving cell. The UE does this by measuring specific reference signals transmitted by the gNB (in NR) or eNB (in LTE). These measurements are compared against two configurable thresholds: the out-of-sync (OOS) threshold (Q_out) and the in-sync (IS) threshold (Q_in).
When the estimated radio link quality falls below the Q_out threshold, the physical layer in the UE declares an 'out-of-sync' indication to higher layers. Conversely, when the quality recovers above the Q_in threshold, an 'in-sync' indication is declared. The higher-layer protocol stack (typically the RRC layer) implements a state machine that counts these consecutive indications. If a certain number of consecutive 'out-of-sync' indications are received (N310), a timer (T310) is started. If the required number of consecutive 'in-sync' indications (N311) is not received before T310 expires, the UE declares a Radio Link Failure (RLF).
Upon declaring RLF, the UE initiates a connection re-establishment procedure. It stops transmitting on the uplink, selects a new cell (which could be the same cell or a different one), and attempts to re-synchronize and re-establish the RRC connection. This entire process, governed by RLM, is vital for handling scenarios like sudden shadowing, deep fading, or interference, ensuring that the UE can autonomously recover connectivity without unnecessary signaling overhead from the network side.
The configuration parameters for RLM, such as Q_out, Q_in, N310, T310, and N311, are provided to the UE via RRC signaling (e.g., in the RRCReconfiguration message). These parameters can be tailored based on the service type, mobility state, or network deployment scenario. For instance, a UE configured for ultra-reliable low-latency communication (URLLC) might have more stringent thresholds or shorter timers to enable faster failure detection and recovery. RLM operates independently in both the source cell during handover preparation and in the target cell after handover execution, ensuring seamless mobility management.
Purpose & Motivation
Radio Link Monitoring exists to provide a robust, UE-autonomous mechanism for detecting a deteriorating or lost radio connection. Before standardized procedures like RLM, networks relied more heavily on network-side detection of link failure, which could be slower and less efficient. The primary problem RLM solves is service discontinuity due to poor radio conditions. It allows the UE to quickly and independently determine when the link is no longer usable for reliable communication, triggering a controlled recovery process.
The historical motivation stems from the need for reliable mobility in packet-switched cellular systems like LTE and 5G NR, where maintaining an 'always-on' IP connection is crucial. In earlier cellular generations, connection failures often led to dropped calls or sessions with significant delay before reconnection. RLM provides a proactive and standardized method to detect failure, stop useless transmissions (conserving UE battery and reducing interference), and swiftly attempt reconnection to the best available cell. It addresses the limitations of purely network-controlled supervision, which might not react quickly enough to rapid changes in the UE's radio environment, especially at cell edges or in high-mobility scenarios.
Classification
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (11 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.
In Release 15, clarifications and descriptive aspects were introduced for the Radio Link Monitoring (RLM) function, particularly regarding its operation with SSB-based beam management and beam failure detection. The specifications detail how RLM measurements interact with mechanisms like time domain ICIC, where dedicated RRC signalling can configure RRM/RLM measurement resource restrictions to protect measurements from interference in scenarios involving CSG or pico cells. Furthermore, the behaviour of RLM during different phases of In-Device Coexistence (IDC) interference was clarified, stating that the UE shall ensure RLM measurements are free of such interference to maintain connectivity.
In Release 16, the RLM function was enhanced with specific considerations for Integrated Access and Backhaul (IAB) nodes, introducing maintenance procedures for the sharing factor of RLM and link recovery for the IAB-Mobile Termination (IAB-MT). Furthermore, the release included work on refining the determination of the number of Reference Signals (RS) used for Radio Link Monitoring.
In Release 17, the enhancements for Radio Link Monitoring (RLM) primarily involved test case corrections and support for new device types. Specifically, the release included updates to the applicability of RLM test cases and introduced specific RLM test cases for Reduced Capability (RedCap) UEs. These changes ensured proper RLM operation for RedCap devices alongside corrections for configurations in dual-connectivity scenarios.
In Release 18, the RLM (Radio Link Monitoring) enhancements included clarifications and corrections for test applicability, particularly for Standalone NR operation on FR1 with a 3 MHz channel bandwidth using SSB-based measurements. The release also provided clarifications on the interaction between RLM/Beam Failure Detection relaxation procedures and short DRX cycles, and corrected applicability notes for FR2 RRM RLM test cases.
- Clarification RLM/BFD relaxation and short DRX TS 38.331CR4771
- Correction to applicability notes for FR2 RRM RLM test cases TS 38.522CR0392
- Addition of test applicability for NR SA FR1 SSB based RLM in-sync with 3 MHz channel bandwidth test case TS 38.522CR0545
- Correction of test applicability for NR SA FR1 RLM in-sync 3 MHz bandwidth test case TS 38.522CR0581
Explore further
Broader topics and technologies where RLM plays a role.
Defining Specifications
3GPP specifications that define or reference RLM, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 36.300 vj00 | E-UTRAN Radio Interface Protocol Architecture Overview | Rel-19 |
| 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 37.340 vj00 | Multi-Connectivity Operation Overview | Rel-19 |
| TS 37.816 vg00 | RAN-centric Data Collection & Utilization Study | Rel-16 |
| TS 38.106 vj20 | NR Repeater Radio Transmission and Reception | Rel-19 |
| TS 38.133 vj20 | 5G UE Radio Requirements for RRC_IDLE Mobility | 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 38.213 vj10 | NR Physical Layer Control Procedures | 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 38.522 vj11 | UE Conformance Test Applicability Statement | Rel-19 |
| TR 38.864 vi10 | Technical Report on Network Energy Savings for NR | Rel-18 |
| 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 |