Discrete Time Credit-Based Shaping for Time-Sensitive Applications in 5G/6G Networks
Anudeep Karnam, Kishor C. Joshi, Jobish John, George Exarchakos, Sonia Heemstra de Groot, Ignas Niemegeers

TL;DR
This paper introduces a novel discrete-time credit-based shaping method for 5G/6G networks that ensures deterministic delays for time-sensitive applications by adapting Ethernet's CBS to the discrete NR slots.
Contribution
It proposes a slot-native CBS approach and a partial usage variant to maintain bounded delay and QoS guarantees in 5G/6G NR, addressing the challenge of discrete scheduling.
Findings
CBS-PU maintains bounded credit and delay guarantees.
Slot-level credit gating improves resource utilization.
CBS-PU outperforms traditional methods in simulations.
Abstract
Future wireless networks must deliver deterministic end-to-end delays for workloads such as smart-factory control loops. On Ethernet these guarantees are delivered by the set of tools within IEEE 802.1 time sensitive networking~(TSN) standards. Credit-based shaper (CBS) is one such tool which enforces bounded latency. Directly porting CBS to 5G/6G New Radio (NR) is non-trivial because NR schedules traffic in discrete-time, modulation-dependent resource allocation, whereas CBS assumes a continuous, fixed-rate link. Existing TSN-over-5G translators map Ethernet priorities to 5G quality of service (QoS) identifiers but leave the radio scheduler unchanged, so deterministic delay is lost within the radio access network (RAN). To address this challenge, we propose a novel slot-native approach that adapts CBS to operate natively in discrete NR slots. We first propose a per-slot credit…
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Taxonomy
TopicsNetwork Time Synchronization Technologies · Energy Efficient Wireless Sensor Networks · Wireless Networks and Protocols
