MCG

Master Cell Group

Radio Access Network →
Introduced in Rel-12

MCG is the group of serving cells associated with the Master Node in dual connectivity, providing the Primary Cell and potentially Secondary Cells for a UE connected to two nodes simultaneously.

Category
Radio Access Network
Introduced
Rel-12
Where
Radio Access Network › NG-RAN (5G)
Specifications
35 specs
MCG Description Purpose Related Classification Detected Changes Specifications

Description

The Master Cell Group (MCG) is a core concept in 3GPP's dual connectivity (DC) and multi-radio dual connectivity (MR-DC) frameworks, introduced in Release 12. It defines the set of serving cells associated with the Master Node (MN). The Master Node is the radio access node that terminates at least the control plane connection to the core network (e.g., via the S1-MME or NG-C interface). Within the MCG, one cell is designated as the Primary Cell (PCell). The PCell is the anchor point for the UE's connection; it handles critical radio resource control (RRC) signaling, system information acquisition, and serves as the primary point for mobility management and security procedures. The MCG can also include one or more Secondary Cells (SCells) to provide additional bandwidth via carrier aggregation, all controlled by the same Master Node. The MCG operates in conjunction with a Secondary Cell Group (SCG), which is associated with a Secondary Node (SN). The UE maintains a single RRC connection, managed by the Master Node, but can utilize radio resources from both the MCG and SCG for enhanced data rates and reliability.

From an architectural perspective, the MCG's operation is defined across multiple protocol layers. At the RRC layer (specified in TS 36.331 for LTE and TS 38.331 for NR), the Master Node generates the RRC messages that configure the MCG and SCG, including the addition, modification, or release of SCells within the MCG. At the Packet Data Convergence Protocol (PDCP) layer, the Master Node may host PDCP entities for split bearers, where data is routed to both the MCG and SCG for transmission. The Radio Link Control (RLC) and Medium Access Control (MAC) layers in the Master Node manage logical channels, hybrid ARQ, and scheduling specifically for the cells within the MCG. The physical layer specifications (e.g., TS 36.101, 38.101) define the RF requirements for UE operation within the MCG's carriers.

The role of the MCG is pivotal in ensuring seamless mobility and session continuity. During handover procedures in MR-DC scenarios, the MCG may change if the Master Node is changed, which involves a handover of the PCell. The network can reconfigure the MCG's composition (e.g., adding or removing SCells) based on radio conditions, load, and UE capability. In scenarios like EN-DC (E-UTRA-NR Dual Connectivity), where the Master Node is an LTE eNB and the SCG is associated with an NR gNB, the LTE-based MCG provides the control plane anchor and often carries critical signaling and potentially some user plane data. The management and performance of the MCG are critical for overall dual connectivity performance, impacting throughput, latency, and connection robustness.

Purpose & Motivation

The Master Cell Group was introduced to address the growing demand for higher data rates, improved spectral efficiency, and robust connectivity beyond what single-node carrier aggregation could provide. Prior to dual connectivity, a UE was connected to a single base station (eNodeB in LTE), utilizing carrier aggregation within that station's cells. This approach had limitations in exploiting disjoint spectrum bands owned by different network nodes or in dense deployments where a UE could be in coverage of multiple transmission points. Dual connectivity, and by extension the MCG/SCG split, was created to allow a UE to simultaneously consume radio resources from two different nodes connected via a non-ideal backhaul (e.g., X2 or Xn interface).

The primary problem solved is the aggregation of resources across geographically separated nodes, which is particularly valuable for leveraging both macro and small cell layers. The MCG, anchored to the Master Node (often a macro cell), provides a stable control plane connection and coverage reliability. This allows the Secondary Node (often a small cell) to focus on delivering high-capacity user plane data. This separation of concerns enhances network performance without compromising mobility management. The concept was essential for the smooth evolution from LTE to 5G NR, enabling architectures like EN-DC where the existing LTE network (as the MCG) provides the control plane anchor for initial 5G NR deployment, ensuring coverage and fallback while the NR SCG delivers enhanced mobile broadband.

Furthermore, the MCG framework provides a structured way to manage complexity. It clearly delineates control responsibilities (Master Node handles RRC) and allows for flexible user plane architectures (MCG bearer, SCG bearer, split bearer). This addresses the limitation of earlier coordinated multipoint (CoMP) schemes which required very low-latency, ideal backhaul. By tolerating higher latency backhaul between Master and Secondary Nodes, dual connectivity with MCG/SCG became a more practical and deployable solution for capacity boosting in real-world networks.

Classification

Related approachesSCG

Release Timeline

Detected Changes Across Releases

from 3GPP Change Requests

Specific changes extracted from the „Change history“ tables of 3GPP specifications (26 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.

Rel-15 7 changes

In Release 15, specific corrections and clarifications were introduced for the Master Cell Group (MCG) function, including corrections for SN-terminated MCG bearers and MCG measurements in failure information. The release also addressed procedures for inter-gNB-DU mobility using the MCG SRB and resolved PCI confusion through the addition of an MCG cell ID. Furthermore, it clarified the setup of an MCG bearer for the MgNB to handle a PDU session's user plane.

  • Correction of "Maximum MCG admittable E-RAB Level QoS Parameters" TS 36.423CR1203
  • Correction for SN terminated MCG bearer TS 37.340CR0079
  • Removal of creation of MCG MAC entity TS 38.331CR0593
  • Clarification on sending condition for mcg-RB-Config TS 38.331CR1110
  • Correction on MCG measurements in SCGFailureInformation TS 38.331CR1305
  • Inter-gNB-DU mobility using MCG SRB procedure TS 38.401CR0104

+ 1 more changes

Rel-16 15 changes

In Release 16, the key enhancement for the Master Cell Group (MCG) function was the introduction of a "fast MCG link recovery" procedure. This new mechanism primarily utilizes SRB3 to enable quicker recovery from MCG radio link failures. Furthermore, the release extended this recovery capability to support scenarios involving inter-RAT handover.

  • Fast MCG link recovery via SRB3 TS 36.423CR1416
  • Inter-RAT HO support for fast MCG recovery TS 36.423CR1503
  • Fast MCG link Recovery with SRB3 TS 38.423CR0285
  • Inter-RAT HO support for fast MCG recovery TS 38.423CR0388
  • Clarification on Fast MCG Link Recovery TS 36.331CR4543
  • Corrections on RRC reconfiguration for fast MCG link recovery TS 36.331CR4715

+ 9 more changes

Rel-17 2 changes

In Release 17, specific corrections were made to the procedures for Fast MCG Recovery via SRB3, including clarifications on the primaryPath for fast MCG link recovery. These updates refined the existing mechanisms without introducing new bearer types or altering the fundamental setup of MCG bearers for the Master Node. The changes focused on improving the reliability and clarity of the recovery process for the master cell group's signaling connection.

  • Correction on Fast MCG Recovery via SRB3 TS 38.423CR1105
  • Correction on primaryPath for fast MCG link recovery TS 38.331CR4260
Rel-19 2 changes

In Release 19, enhancements were made to the Master Cell Group (MCG) function, specifically introducing Early Data Forwarding for subsequent MCG Link Traffic Management (LTM). Furthermore, the release included Stage 2 corrections to improve the inter-Central Unit (inter-CU) MCG LTM procedure, addressing issues with the repeated triggering of the Xn-U Address Indication process.

  • Early Data Forwarding for subsequent MCG LTM TS 37.340CR0426
  • Stage 2 corrections to inter-CU MCG LTM on repeated multiple times of Xn-U Address Indication procedures TS 37.340CR0433

Explore further

Broader topics and technologies where MCG plays a role.

Defining Specifications

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

SpecificationTitleRelease
TS 23.725 vg20 Study on URLLC Architecture Enhancements Rel-16
TS 32.425 vj00 E-UTRAN Performance Measurements Rel-19
TS 33.825 vg01 Security for 5G URLLC Services Rel-16
TS 36.101 vj30 LTE UE Radio Transmission & Reception Requirements Rel-19
TS 36.300 vj00 E-UTRAN Radio Interface Protocol Architecture Overview Rel-19
TS 36.321 vj00 E-UTRA MAC Protocol Specification Rel-19
TS 36.323 vj00 PDCP Protocol Specification Rel-19
TS 36.331 vj00 LTE RRC Protocol Specification Rel-19
TS 36.423 vj10 X2 Application Protocol (X2AP) Specification Rel-19
TS 36.842 vc00 Small Cell Enhancements for LTE Higher Layers Rel-12
TS 36.875 vd10 Dual Connectivity Extension Requirements Rel-13
TS 37.340 vj00 Multi-Connectivity Operation Overview Rel-19
TS 37.483 vj10 E1 Application Protocol (E1AP) Rel-19
TS 38.101 vj31 NR User Equipment Radio Transmissions Rel-19
TS 38.133 vj20 5G UE Radio Requirements for RRC_IDLE Mobility Rel-19
TS 38.213 vj10 NR Physical Layer Control Procedures Rel-19
TS 38.306 vj00 NR UE Radio Access Capability Parameters Rel-19
TS 38.321 vj00 NR MAC Protocol Specification 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
TS 38.423 vj10 Xn Application Protocol (XnAP) specification Rel-19
TS 38.463 vj00 E1 Application Protocol (E1AP) Rel-19
TS 38.508 vj11 5G NR UE Radio Transmission & Reception 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
TS 38.523 vj20 5G NR UE Conformance Testing: Idle/Inactive Rel-19
TS 38.755 vj10 NR FR1 DL Fragmented Carriers Study Rel-19
TS 38.793 vj00 Simultaneous Rx/Tx Band Combinations TR Rel-19
TR 38.804 ve00 Study on New Radio Access Technology; Radio Interface Protocol Aspects Rel-14
TR 38.839 vh00 Simultaneous Rx/Tx band combinations Rel-17
TS 38.863 vj10 NR NTN RF and Co-existence Spec Rel-19
TR 38.881 vi00 Technical Report on Lower MSD for Inter-band CA/EN-DC/DC Rel-18
TR 38.889 vg00 NR-based access to unlicensed spectrum study Rel-16
TR 38.894 vi00 Technical Report Rel-18
TR 38.912 vj00 Study on New Radio Access Technology Rel-19
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.