Packet Level Resilience for the User Plane in 5G Networks

Fuente: arXiv
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Main Authors: Ihle, Fabian, Meuser, Tobias, Menth, Michael, Scheuermann, Björn
Format: Preprint
Published: 2025
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author Ihle, Fabian
Meuser, Tobias
Menth, Michael
Scheuermann, Björn
author_facet Ihle, Fabian
Meuser, Tobias
Menth, Michael
Scheuermann, Björn
contents The growing demands of ultra-reliable and low-latency communication (URLLC) in 5G networks necessitate enhanced resilience mechanisms to address user plane failures caused by outages, hardware defects, or software bugs. An important aspect for achieving ultra-reliable communication is the redundant transmission of packets, as also highlighted in 3GPP Release 18. This paper explores leveraging the Packet Replication, Elimination, and Ordering Function (PREOF) to achieve 1+1 path protection within private 5G environments. By extending existing 5G components with mechanisms for packet level redundancy and offloading the reordering mechanism to external servers, the proposed approach ensures minimal packet loss in case of a failure. A conceptual integration of redundant paths and programmable elements is presented, with considerations for deployment in existing 5G infrastructures and the trade-offs of latency versus enhanced traffic engineering. Future work aims to evaluate practical implementations using an open source 5G core, P4-based hardware and offloading technologies like DPDK and eBPF.
format Preprint
id arxiv_https___arxiv_org_abs_2501_17964
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Packet Level Resilience for the User Plane in 5G Networks
Ihle, Fabian
Meuser, Tobias
Menth, Michael
Scheuermann, Björn
Networking and Internet Architecture
The growing demands of ultra-reliable and low-latency communication (URLLC) in 5G networks necessitate enhanced resilience mechanisms to address user plane failures caused by outages, hardware defects, or software bugs. An important aspect for achieving ultra-reliable communication is the redundant transmission of packets, as also highlighted in 3GPP Release 18. This paper explores leveraging the Packet Replication, Elimination, and Ordering Function (PREOF) to achieve 1+1 path protection within private 5G environments. By extending existing 5G components with mechanisms for packet level redundancy and offloading the reordering mechanism to external servers, the proposed approach ensures minimal packet loss in case of a failure. A conceptual integration of redundant paths and programmable elements is presented, with considerations for deployment in existing 5G infrastructures and the trade-offs of latency versus enhanced traffic engineering. Future work aims to evaluate practical implementations using an open source 5G core, P4-based hardware and offloading technologies like DPDK and eBPF.
title Packet Level Resilience for the User Plane in 5G Networks
topic Networking and Internet Architecture
url https://arxiv.org/abs/2501.17964