Description
The Packet Delay Budget (PDB) is a fundamental Quality of Service (QoS) parameter in the 5G System (5GS), defined in 3GPP TS 23.501. It specifies the maximum allowable end-to-end packet delay for a QoS Flow, measured from the UE to the User Plane Function (UPF) that terminates the N6 interface (towards the Data Network), or vice-versa. The PDB is not a guaranteed delay but a target used by the network's packet scheduling and resource management functions. It is intrinsically linked to a standardized 5G QoS Identifier (5QI), where each 5QI value has a default PDB (and Packet Error Rate) assigned, as per Annex A of TS 23.501.
Operationally, the PDB influences decisions across the RAN and core network. In the Radio Access Network (RAN), the gNB uses the PDB for uplink and downlink scheduling. For example, packets belonging to a QoS Flow with a tight PDB (e.g., 10 ms for URLLC) are prioritized over those with a lax PDB (e.g., 300 ms for buffered streaming). The PDB helps determine scheduling priorities, Hybrid ARQ (HARQ) configurations, and potentially the selection of numerology and slot format. In the core network, the Session Management Function (SMF) may use the PDB during QoS Flow establishment and for policy control interactions with the PCF.
The parameter works in conjunction with other QoS attributes like Guaranteed Flow Bit Rate (GFBR), Maximum Flow Bit Rate (MFBR), and Averaging Window. The network aims to ensure that the 95th percentile of the packet delay distribution does not exceed the PDB for the QoS Flow. For Non-GBR QoS Flows, the PDB indicates a packet delay tolerance used for scheduling. The PDB is a critical enabler for service differentiation, allowing the network to simultaneously support diverse applications from massive IoT to ultra-reliable low-latency communications (URLLC) on a common infrastructure.
Purpose & Motivation
The PDB was introduced to provide a standardized, quantifiable latency target for QoS management in 5G, addressing the need for predictable performance for latency-critical applications. Previous generations (4G LTE) had QoS Class Identifiers (QCIs) with implied performance targets, but 5G's expanded use cases—particularly Industrial IoT, autonomous vehicles, and real-time gaming—required more explicit and stringent delay parameters for reliable network behavior.
It solves the problem of inefficient or unpredictable latency handling for mixed traffic types. By assigning a concrete PDB value to each standardized 5QI, network equipment from different vendors can implement consistent scheduling and admission control algorithms. This ensures interoperability and allows application developers and vertical industries to rely on specific network performance levels. The PDB is a cornerstone of 5G's network slicing capability, as different slices can be configured with different latency budgets to serve distinct service level agreements (SLAs).
Classification
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (17 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.
In Release 15, the specification introduced fixes and clarifications for the Packet Delay Budget (PDB) function, particularly for URLLC services and dynamically assigned 5QIs. The PDB defines an upper bound for the time a packet may be delayed between the UE and the UPF terminating the N6 interface, and this value is the same in uplink and downlink for a given 5QI. These enhancements clarified the role of the PDB in configuring scheduling and link layer functions, such as PDCP in the RAN, to ensure packets are delivered within the defined delay budget.
In Release 16, the primary new development for the Packet Delay Budget (PDB) function was the formal introduction and clarification of End-to-End (E2E) PDB division. This involved specifying procedures for dividing the total edge-to-edge PDB between the Core Network (CN) and the Radio Access Network (RAN), with the CN component now being configured separately for the uplink and downlink directions. These enhancements provided a more structured framework for QoS monitoring and packet delay estimation to ensure packets are delivered within the budget between the UE and the UPF.
- Introduction of E2E PDB Division TS 23.501CR0989
- Accumulated packet delay estimation for QoS monitoring and division of PDB TS 23.725CR0028
- Update description for E2E PDB division TS 23.501CR1142
- Clarification on the CN PDB configured in each NG-RAN node TS 23.501CR1163
- CN component of the PDB is configured per UL and DL TS 23.501CR2015
- TSN CN PDB TS 23.501CR2050
+ 4 more changes
In Release 17, the specification introduced a defined Packet Delay Budget (PDB) value for the standardized 5QI 10. Furthermore, the concept of "packet size for PDB" was addressed, recognizing that for applications like cyber-physical control, message delivery depends on all packets of a segmented message being received within the PDB.
In Release 18, the handling of Packet Delay Budget (PDB) was updated to address PIN scenarios and introduced the new parameters PSER and PSDB, which supersede the PER and PDB per direction. Furthermore, a correction was made regarding how the CN PDB is configured in the NG-RAN. These changes refine the edge-to-edge packet forwarding treatment between the UE and the UPF, ensuring the PDB continues to define the upper bound for packet delay.
Explore further
Broader topics and technologies where PDB plays a role.
Defining Specifications
3GPP specifications that define or reference PDB, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TR 22.832 vh40 | Study on cyber-physical control in vertical domains | Rel-17 |
| TS 23.501 vk00 | 5G System Architecture Stage 2 | Rel-20 |
| TS 23.725 vg20 | Study on URLLC Architecture Enhancements | Rel-16 |
| TR 23.737 vh20 | Satellite Access in 5G Architecture Study | Rel-17 |
| TR 23.780 ve00 | MBMS for Mission Critical Communication Services | Rel-14 |
| TS 24.385 vj00 | V2X Communication Provisioning Management Object | Rel-19 |
| TS 24.386 vj00 | V2X Communication Protocols and Procedures | Rel-19 |
| TR 26.926 vj00 | Traffic Models & Quality Evaluation for Media/XR in 5G | Rel-19 |
| TR 26.928 vj00 | Study on eXtended Reality (XR) in 5G | Rel-19 |
| TS 29.513 vj40 | 5G PCC Signalling Flows & QoS Mapping | Rel-19 |
| TS 38.300 vj00 | NG-RAN Overall Description | Rel-19 |
| TS 38.321 vj00 | NR MAC Protocol Specification | Rel-19 |
| TR 38.835 vi01 | Technical Report on XR Enhancements for NR | Rel-18 |
| TR 38.838 vh00 | Study on XR Evaluations for NR | Rel-17 |