Description
5G is a comprehensive system architecture defined by 3GPP, fundamentally redesigned from previous generations to support a wider range of services and requirements. The system is defined by a clear separation between the Radio Access Network (RAN) and the Core Network (CN). The 5G Access Network (5G-AN), which includes the Next Generation Radio Access Network (NG-RAN) built on gNBs and ng-eNBs, is responsible for all radio-related functions. It connects to the 5G Core Network (5GC) via standardized interfaces (N2 for control plane, N3 for user plane), enabling a service-based architecture (SBA) with greater flexibility and scalability than previous network generations.
The 5G Core Network is a cloud-native, service-based architecture where network functions (NFs) like the Access and Mobility Management Function (AMF), Session Management Function (SMF), and User Plane Function (UPF) offer their capabilities as reusable services to other authorized NFs via a common framework. Communication between these NFs uses HTTP/2-based service-based interfaces (SBIs). A key innovation is the clear separation of the User Plane (UP) from the Control Plane (CP). The UPF handles all packet routing and forwarding, policy enforcement, and traffic reporting, and it can be deployed flexibly and distributedly close to the network edge to minimize latency. The CP functions manage sessions, mobility, and policies.
5G introduces the concept of network slicing, which allows the creation of multiple logical, end-to-end networks on a shared physical infrastructure. Each slice is an isolated set of network resources and functions tailored to specific service requirements (e.g., enhanced Mobile Broadband (eMBB), Ultra-Reliable Low-Latency Communications (URLLC), massive Machine-Type Communications (mMTC)). The 5G system supports a unified authentication framework and enables seamless mobility and session continuity, including interworking with 4G E-UTRAN via the Non-Standalone (NSA) architecture where the 5G RAN is anchored to a 4G core, and the Standalone (SA) architecture with a full 5G core.
Purpose & Motivation
5G was created to address the exponential growth in mobile data traffic and the emergence of new use cases that 4G networks were not designed to handle efficiently. The limitations of 4G included constrained peak data rates, higher latency unsuitable for real-time control, limited capacity for massive numbers of IoT devices, and a monolithic core network architecture that was difficult to adapt for diverse service requirements. The industry needed a more flexible, scalable, and efficient system to support the future digital society.
The primary motivation was to define a single, unified network platform capable of supporting three broad families of use cases defined by the ITU's IMT-2020 vision: Enhanced Mobile Broadband (eMBB) for extreme data rates, Ultra-Reliable Low-Latency Communications (URLLC) for critical applications like industrial automation and remote surgery, and massive Machine-Type Communications (mMTC) for connecting vast numbers of low-power sensors. This required a fundamental architectural shift to a cloud-native, service-based core and a more advanced radio interface.
Furthermore, 5G aims to reduce the total cost of ownership for operators by introducing network virtualization, softwarization, and automation. The service-based architecture and network slicing enable operators to deploy and manage services more rapidly and efficiently, creating new revenue streams by offering tailored connectivity solutions to vertical industries like automotive, manufacturing, and healthcare, which was challenging with previous generations.
Classification
Release Timeline
Evolution Across Releases
Introduced the first full set of 5G standards, defining the 5G System (5GS) architecture including the 5G Core (5GC) with its Service-Based Architecture (SBA) and the NG-RAN. It specified both Non-Standalone (NSA) operation (5G NR radio with 4G EPC core) and Standalone (SA) operation (full 5GC and NR). Established the foundational capabilities for eMBB and initial URLLC support.
Enhanced 5G with significant improvements for vertical industries. Introduced advanced URLLC features for industrial IoT, support for Time-Sensitive Networking (TSN), and Cellular Vehicle-to-Everything (C-V2X) communications. Added enhancements for unlicensed and shared spectrum (NR-U), integrated access and backhaul (IAB), and improved network slicing management.
Focused on expansion and efficiency. Introduced support for reduced capability (RedCap) NR devices for mid-tier IoT, enhancements for NR operation in higher frequency ranges up to 71 GHz, and improved support for multicast/broadcast services. Added sidelink enhancements for direct device-to-device communication and further refined network automation and slicing capabilities.
Marked the start of '5G-Advanced', focusing on AI/ML integration into the RAN and core network, enhanced network energy savings, extended reality (XR) optimizations, and further evolution of duplexing, MIMO, and positioning technologies. Continued to expand capabilities for vertical applications and improve overall system performance and efficiency.
Explore further
Broader topics and technologies where 5G plays a role.
Defining Specifications
3GPP specifications that define or reference 5G, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TR 21.905 vj00 | 3GPP Technical Terms and Definitions | Rel-19 |
| TS 22.261 vk30 | 5G System Service Requirements | Rel-20 |
| TR 22.804 vg30 | 5G Automation in Vertical Domains Study | Rel-16 |
| TS 22.830 vg10 | Business Role Models for Network Slicing | Rel-16 |
| TR 22.861 ve10 | Massive IoT Feasibility Study; Stage 1 | Rel-14 |
| TS 22.864 vf00 | 5G Network Operation Use Cases & Requirements | Rel-15 |
| TS 23.003 vj50 | Numbering, addressing and identification in 3GPP | Rel-19 |
| TS 23.304 vk00 | 5G Proximity Services (ProSe) Stage 2 | Rel-20 |
| TS 23.501 vk00 | 5G System Architecture Stage 2 | Rel-20 |
| TS 23.503 vk00 | 5G Policy and Charging Control Framework | Rel-20 |
| TS 23.700 vk00 | XR Services Application Enablement Layer | Rel-20 |
| TR 23.745 vh00 | Study on App Layer Support for Factories of the Future in 5G | Rel-17 |
| TS 23.795 vg10 | V2X Application Architecture Study | Rel-16 |
| TS 24.237 vj00 | IMS Service Continuity Protocol Details | Rel-19 |
| TS 24.501 vj50 | 5G NAS Protocols Specification | Rel-19 |
| TS 24.502 vj20 | 5G Core Access via Non-3GPP Networks; Stage 3 | Rel-19 |
| TS 24.514 vj30 | Ranging & Sidelink Positioning in 5GS | Rel-19 |
| TS 24.554 vj40 | 5G Proximity Services (ProSe) Protocols | Rel-19 |
| TS 24.555 vj30 | 5G ProSe UE Policies Specification | Rel-19 |
| TS 24.890 vg00 | 5G NAS Protocol for 5GS Stage 3 | Rel-16 |
| TS 28.203 vi10 | Charging management | Rel-18 |
| TS 29.503 vj50 | UDM Service Based Interface Stage 3 | Rel-19 |
| TS 29.509 vj50 | AUSF Service Based Interface Protocol | Rel-19 |
| TS 29.512 vj40 | 5G Session Management Policy Control Service | Rel-19 |
| TS 29.513 vj40 | 5G PCC Signalling Flows & QoS Mapping | Rel-19 |
| TS 29.521 vj40 | 5G Binding Support Management Service Stage 3 | Rel-19 |
| TS 29.534 vj20 | 5G Access & Mobility Policy Authorization Service | Rel-19 |
| TS 29.555 vj10 | 5G Direct Discovery Name Management Services | Rel-19 |
| TS 29.557 vj20 | 5G AF ProSe Service Stage 3 Protocol | Rel-19 |
| TS 29.559 vj40 | 5G PKMF Service Based Interface Stage 3 | Rel-19 |
| TS 29.890 vg00 | CT3 5G System Technical Report | Rel-16 |
| TS 31.102 vj40 | USIM Application Specification | Rel-19 |
| TS 32.240 vj40 | Charging Management Architecture & Principles | Rel-19 |
| TS 32.277 vj20 | Charging Management for Proximity Services (ProSe) | Rel-19 |
| TS 33.501 vk00 | 5G Security Architecture and Procedures | Rel-20 |
| TS 33.503 vj20 | Security for Proximity Services (ProSe) in 5G | Rel-19 |
| TR 33.851 vh10 | Security for Industrial IoT in 5G | Rel-17 |