Description
Multi-Radio Dual Connectivity (MR-DC) is an advanced Radio Access Network (RAN) architecture defined by 3GPP, enabling a User Equipment (UE) to maintain concurrent connections with two distinct base stations, typically involving different radio access technologies (RATs) like LTE and New Radio (NR). This is achieved through a master node (MN) and a secondary node (SN), where the MN provides control plane connectivity and the SN adds additional user plane resources. The UE utilizes multiple receivers and transmitters to communicate with both nodes, aggregating data flows to increase throughput and reliability. Key variants include EN-DC (E-UTRA-NR Dual Connectivity) with LTE as master and NR as secondary, NE-DC (NR-E-UTRA Dual Connectivity) with NR as master and LTE as secondary, and NR-DC (NR-NR Dual Connectivity) within 5G. The architecture involves split bearer options where data radio bearers (DRBs) can be terminated at the MN, SN, or both, allowing flexible traffic steering and load balancing.
Operationally, MR-DC relies on tight coordination between the MN and SN via standardized interfaces: the X2 interface for LTE-based nodes or the Xn interface for NR-based nodes. The MN handles core network signaling (e.g., via the S1 or NG interface) and manages UE context, while the SN contributes additional radio resources without direct core network attachment. Procedures include SN addition, modification, and release, driven by measurement reports from the UE to optimize performance. The UE measures signal qualities from both nodes, enabling dynamic resource allocation and mobility events like handovers. This setup supports features like carrier aggregation across RATs, enhanced mobility through make-before-break handovers, and improved coverage by leveraging lower-frequency bands from one RAT and higher-frequency bands from another.
In the network, MR-DC plays a crucial role in facilitating smooth transitions between 4G and 5G, allowing operators to deploy 5G incrementally while reusing existing LTE infrastructure. It boosts user experience by providing higher peak data rates, lower latency for split bearers, and increased reliability through path diversity. For network operators, MR-DC optimizes spectrum utilization and capital expenditure by enabling non-standalone (NSA) 5G deployments, where 5G NR is anchored to an LTE core. The technology is foundational for achieving the performance targets of 5G, such as enhanced mobile broadband (eMBB), and supports advanced use cases like ultra-reliable low-latency communication (URLLC) by leveraging dual connectivity for redundancy.
Purpose & Motivation
MR-DC was created to address the challenges of evolving mobile networks from 4G to 5G, ensuring backward compatibility and efficient resource use during the transition. Prior to MR-DC, dual connectivity existed within a single RAT (e.g., LTE-LTE DC), but it could not leverage the benefits of combining different RATs like LTE and NR. This limitation hindered the ability to deliver the high data rates and low latency promised by 5G without a full standalone deployment. MR-DC solves this by allowing UEs to simultaneously utilize LTE and NR radios, maximizing available spectrum and improving network performance without requiring immediate core network upgrades.
Historically, the motivation for MR-DC stemmed from the industry's need for a cost-effective path to 5G, as building entirely new 5G networks from scratch was prohibitively expensive. By enabling non-standalone 5G architectures, MR-DC allows operators to launch 5G services quickly using existing LTE infrastructure for control plane functions and NR for enhanced capacity. It addresses problems such as coverage gaps in early 5G deployments, where high-frequency NR bands have limited range, by anchoring connections to more pervasive LTE networks. This approach also enhances mobility robustness, as UEs can maintain connectivity through LTE while adding NR for boosted throughput.
Furthermore, MR-DC supports the growing demand for diverse services and network slicing in 5G. By aggregating resources across RATs, it provides flexibility to meet varying quality of service (QoS) requirements, from high-speed data to reliable low-latency communication. The technology fosters innovation in multi-RAT coordination, paving the way for future enhancements like integrated access and backhaul (IAB) and advanced carrier aggregation. Its standardization in 3GPP ensures global interoperability, enabling seamless user experiences and facilitating the co-existence of multiple network generations.
Classification
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (38 CRs across 5 releases). Complements the general historical overview above with the evidence-based evolution of this function.
In Release 15, the foundational framework for Multi-Radio Dual Connectivity (MR-DC) was introduced, defining its operation with both the EPC via EN-DC and with the 5GC via NGEN-DC, NE-DC, or NR-DC. This release specified core procedures and capabilities such as UE capability coordination, measurement gap patterns, and QoS flow offloading to enable simultaneous connections over LTE and NR. It also established initial support for key functions including SCell activation/deactivation, data volume reporting, and PDU session split during handover for deployments with a 5G Core.
- Agreements for MR-DC TS 37.340CR0073
- Handling of UP security policy in MR-DC TS 33.501CR0380
- Miscellaneous Corrections on 36.331 for MR-DC TS 36.331CR4079
- MR-DC measurement gap pattern capability TS 36.331CR4100
- Updates to UE capability coordination for MR-DC TS 37.340CR0082
- Corrections for MR-DC procedures TS 37.340CR0090
+ 14 more changes
In Release 16, MR-DC enhancements introduced mobility improvements, mandatory full-rate user plane integrity protection, and support for Integrated Access and Backhaul (IAB). The release also added mechanisms for sidelink resource coordination alongside MR-DC and refined procedures for QoS flow offloading and measurement coordination. Furthermore, it enabled the support of RACS for EN-DC and MR-DC operations.
- Correction of TS 37.340 on the support of MR-DC for IAB TS 37.340CR0186
- TS37.340 Stage2 Introduction of Rel-16 Mobility Enhancement in MR-DC TS 37.340CR0212
- Supporting of RACS for EN-DC and MR-DC TS 37.340CR0213
- Mandatory support of full rate user plane integrity protection in MR-DC TS 37.340CR0222
- CR on co-configuration of sidelink and MR-DC TS 37.340CR0245
- Addition of sidelink MR-DC resource coordination TS 37.340CR0276
+ 3 more changes
In Release 17, the enhancements for MR-DC primarily involved corrections and refinements to existing functionality. These included specific corrections for UE History Information handling in MR-DC scenarios and updates to the mobility restriction list for MR-DC when connected to a 5G Core network. The work focused on improving the reliability and management of established MR-DC operations like EN-DC, NGEN-DC, NE-DC, and NR-DC.
- Corrections for further MR-DC enhancements TS 36.331CR4867
- Corrections to UE History Information in MR-DC TS 37.340CR0332
- Correction for TS 37.340 on UHI in MR-DC TS 37.340CR0357
- Corrections for further MR-DC enhancements TS 38.331CR3459
- Corrections for further MR-DC enhancements TS 38.331CR3563
- Correction on mobility restriction list for MR-DC with 5GC TS 37.340CR0370
In Release 18, the MR-DC function was enhanced through the introduction of R18 positioning capabilities to MR-DC and the addition of new physical layer baseline capabilities. These enhancements built upon the existing MR-DC framework, which includes operations like EN-DC, NGEN-DC, NE-DC, and NR-DC, without altering the fundamental core network connectivity categories or node definitions.
In Release 19, the primary update for MR-DC was the introduction of corrections to the related descriptive text within the management specification TS 28.540. This work focused on refining the technical documentation for Multi-RAT Dual Connectivity operations, including EN-DC, NGEN-DC, NE-DC, and NR-DC, to ensure clarity and accuracy in the defined management requirements.
- Rel-19 CR TS 28.540 corrections for MR-DC related description TS 28.540CR0026
Explore further
Broader topics and technologies where MR-DC plays a role.
Defining Specifications
3GPP specifications that define or reference MR-DC, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 28.540 vk10 | 5G Network Resource Model (NRM) Management | Rel-20 |
| TS 32.425 vj00 | E-UTRAN Performance Measurements | Rel-19 |
| TS 33.501 vk00 | 5G Security Architecture and Procedures | Rel-20 |
| TS 36.331 vj00 | LTE RRC Protocol Specification | Rel-19 |
| TS 37.340 vj00 | Multi-Connectivity Operation Overview | Rel-19 |
| TS 38.133 vj20 | 5G UE Radio Requirements for RRC_IDLE Mobility | Rel-19 |
| TS 38.306 vj00 | NR UE Radio Access Capability Parameters | Rel-19 |
| TS 38.331 vj00 | NR Radio Resource Control (RRC) Protocol Specification | Rel-19 |
| TS 38.425 vj10 | NR User Plane Protocol Specification | 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 |
| TR 38.846 vi10 | Technical Report | Rel-18 |