Description
ATSSS is a comprehensive framework standardized in 3GPP Release 16 and beyond that enables a User Equipment (UE) to establish and utilize a single Protocol Data Unit (PDU) Session across multiple access networks simultaneously. These access networks can include 3GPP access types (like 5G NR or LTE) and non-3GPP access types (like Wi-Fi or fixed networks). The core architectural principle involves the ATSSS Function, which resides in the User Plane Function (UPF) and the UE, working in coordination with the Session Management Function (SMF) in the control plane.
The system operates through three fundamental traffic handling mechanisms: Steering, Switching, and Splitting. Steering involves selecting the most appropriate access network for a new traffic flow based on policies (e.g., send latency-sensitive traffic to 5G, bulk download to Wi-Fi). Switching involves dynamically moving an ongoing flow from one access to another, typically for service continuity if the quality of the current access degrades. Splitting involves distributing the packets of a single IP flow across multiple access networks, which can be done at the packet level (MPTCP-based) or the IP layer (ATSSS-LL-based), to aggregate bandwidth and enhance reliability.
Key components include the ATSSS Control Function (part of the SMF), which manages ATSSS policies and rules, and the ATSSS User Plane Function (within the UPF and UE), which executes the actual traffic distribution. The framework relies on the N4 interface for the SMF to provision these rules to the UPF. Policies are derived from the Policy Control Function (PCF) and can consider real-time access network conditions, user subscription, and application requirements. The UE's ATSSS capability is negotiated during PDU Session Establishment.
ATSSS plays a pivotal role in the 5G architecture by realizing true multi-access convergence. It moves beyond simple access selection (like ANDSF/MPTCP) to provide seamless, policy-driven, and granular control over how user traffic utilizes heterogeneous access resources. This enables operators to deliver enhanced Quality of Experience (QoE) by always using the best available network path(s) for a given service, improving overall network efficiency and resource utilization.
Purpose & Motivation
ATSSS was created to solve the fundamental challenge of efficiently and intelligently utilizing multiple available access networks (cellular and non-cellular) that a modern UE can connect to. Prior to ATSSS, solutions like Access Network Discovery and Selection Function (ANDSF) provided policy-based access selection but lacked the ability to use multiple accesses simultaneously for a single session or to dynamically switch/split traffic within a flow. Multi-Path TCP (MPTCP) offered application-layer splitting but required application support and was not tightly integrated with the core network's policy framework.
The primary motivation was to enhance user experience through improved performance, reliability, and seamless mobility. By allowing traffic steering, switching, and splitting, ATSSS ensures that critical applications always use the best available path, can survive the failure of one access type without service interruption, and can aggregate bandwidth from multiple accesses. This is especially important for 5G's vision of supporting diverse services (eMBB, URLLC, mMTC) where requirements for latency, bandwidth, and reliability vary dramatically.
Furthermore, ATSSS provides operators with a standardized, network-controlled mechanism for traffic management across heterogeneous accesses. It enables new business models, such as fixed-mobile convergence, by treating Wi-Fi and 5G as complementary resources under unified policy control. It addresses the limitations of previous fragmented approaches by integrating deeply into the 5G Core's service-based architecture, providing a scalable and flexible framework essential for the future of converged networks.
Classification
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (101 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.
In Release 16, the ATSSS (Access Traffic Steering, Switching, and Splitting) function was newly introduced, defining a multi-access PDU session architecture that enables traffic steering across 3GPP and non-3GPP accesses using rules provided by the network. It specified key procedures including MA PDU session establishment with UE ATSSS capability indication, the introduction of ATSSS-LL and MPQUIC-based steering functionalities, and support for roaming and EPS interworking scenarios. The release also detailed the necessary policy and charging control (PCC) enhancements, usage monitoring, and QoS support required to govern the ATSSS feature.
- Introduction of ATSSS Support TS 23.501CR0735
- Support of Steering Functions for ATSSS TS 23.501CR0740
- ATSSS-SMF and UPF selection TS 23.501CR0761
- Updating 5.8.2.11 for N4 Rules to support ATSSS TS 23.501CR0785
- MA PDU session modification for ATSSS parameters TS 24.501CR1300
- PCC rule attribute correction for ATSSS TS 29.512CR0330
+ 49 more changes
In Release 17, key enhancements to ATSSS included the introduction of configurable thresholds for the Load-Balancing steering mode, enabling more dynamic traffic distribution. The release also standardized a more efficient mechanism for updating ATSSS rules by allowing partial updates using a dedicated ATSSS Rule ID. Furthermore, it defined procedures for provisioning ATSSS parameters via EPS mechanisms and during network-requested PDU session modification.
- Applying thresholds to Load-Balancing steering mode in ATSSS TS 23.501CR2590
- Partial ATSSS rule update by using ATSSS rule ID TS 23.501CR2886
- ATSSS parameters provisioned and modified through EPS procedure - 24301 Part TS 24.301CR3660
- Extension of PCC rule definition for ATSSS TS 29.512CR0865
- ATSSS Rule ID TS 23.501CR3033
- Updating ATSSS parameter update with network-requested PDU session modification TS 24.501CR3778
+ 4 more changes
In Release 18, key enhancements for ATSSS included the formal integration of MPQUIC as a supported steering functionality, with specific considerations for its multi-layer stack parameters and the determination of ATSSS capabilities for a Multi-Access PDU Session when the UE supports MPQUIC. The release also introduced clarifications and corrections, notably specifying that the redundant steering mode is not applicable for the ATSSS-LL functionality and refining the definition and handling of ATSSS rules, including their component identifiers and delivery mechanisms.
- Determining the ATSSS capabilities of a MA PDU Session when the UE supports MPQUIC TS 23.501CR4457
- Redundant steering mode is not applicable for ATSSS-LL functionality (impact on TS 24.193) TS 24.193CR0114
- ATSSS rules TS 24.193CR0103
- Resolving EN related to including the ATSSS rules to the ATSSS_RESPONSE Notify payload TS 24.193CR0130
- Redundant steering mode is not applicable for ATSSS-LL functionality (impact on TS 24.501) TS 24.501CR5138
- ATSSS_Ph3 Enhanced Considerations of MPQUIC Multi-layer Stack Parameter Settings & Logics TS 23.501CR4777
+ 13 more changes
In Release 19, key enhancements for ATSSS included the introduction of support for MPQUIC-based proxy functionalities and the MPQUIC-UDP and MPQUIC-IP steering functionalities. The release also focused on clarifying and aligning the procedures for determining and signaling ATSSS capabilities between the UE and network, including the handling of the ATSSS Capability IE. Furthermore, updates were made to UPF selection criteria and session management messages to incorporate the ATSSS status.
- Inclusion of ATSSS status in related session management messages TS 24.501CR6880
- Support of MPQUIC based proxy functionalities for ATSSS TS 29.512CR1287
- ATSSS Capabilities support for MPQIUC based functionalities TS 29.512CR1351
- Remove editor note for the ATSSS capability TS 29.512CR1406
- Determination of supported ATSSS capability combinations TS 29.512CR1412
- Updates to the ATSSS capability handling TS 23.501CR5906
+ 11 more changes
Explore further
Broader topics and technologies where ATSSS plays a role.
Defining Specifications
3GPP specifications that define or reference ATSSS, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 23.501 vk00 | 5G System Architecture Stage 2 | Rel-20 |
| TS 23.793 vg00 | 5G ATSSS Study | Rel-16 |
| TS 24.193 vj50 | ATSSS Procedures Specification | Rel-19 |
| TS 24.301 vj60 | NAS protocol for Evolved Packet System | Rel-19 |
| TS 24.501 vj50 | 5G NAS Protocols Specification | Rel-19 |
| TS 26.804 vj10 | 5G Media Streaming Extensions Study | Rel-19 |
| TS 28.104 vj30 | Management Data Analytics (MDA) | Rel-19 |
| TS 29.214 vj20 | Policy and Charging Control over Rx | Rel-19 |
| TS 29.244 vj40 | PFCP Specification for Control/User Plane Separation | Rel-19 |
| TS 29.512 vj40 | 5G Session Management Policy Control Service | Rel-19 |
| TS 29.514 vj40 | 5G System; Policy Authorization Service; Stage 3 | Rel-19 |
| TS 29.519 vj40 | UDR Usage for Policy & Exposure Data | Rel-19 |
| TS 29.523 vj20 | 5G Policy Control Event Exposure Service | Rel-19 |
| TS 32.255 vk10 | Telecom Management; Charging for 5G Data Connectivity | Rel-20 |
| TS 32.291 vj40 | Charging Management: Service-Based Interface Protocol | Rel-19 |
| TS 32.298 vj30 | Charging Data Record (CDR) Parameter Specification | Rel-19 |