Design and Evaluation of IEEE 802.11ax Uplink Orthogonal Frequency Division Multiple Random Access in ns-3
Douglas Dziedzorm Agbeve, Andrey Belogaev, Jeroen Famaey

TL;DR
This paper introduces a fully standard-compliant, open-source UORA implementation for ns-3, enabling more accurate evaluation of Wi-Fi 6 uplink resource allocation strategies and addressing limitations of previous models.
Contribution
It provides the first open-source, standard-compliant UORA implementation for ns-3, improving simulation accuracy and reproducibility for Wi-Fi 6 uplink research.
Findings
Enhanced resource allocation efficiency in simulations.
Improved flexibility and accuracy in UORA evaluation.
Addresses key limitations of previous ns-3 implementations.
Abstract
Wi-Fi networks have long relied on the Enhanced Distributed Channel Access (EDCA) mechanism, allowing stations to compete for transmission opportunities. However, as networks become denser and emerging applications demand lower latency and higher reliability, the limitations of EDCA such as overhead due to contention and collisions have become more pronounced. To address these challenges, Orthogonal Frequency Division Multiple Access (OFDMA) has been introduced in Wi-Fi, enabling more efficient channel utilization through scheduled resource allocation. Furthermore, Wi-Fi 6 defines Uplink Orthogonal Frequency Division Multiple Random Access (UORA), a hybrid mechanism that combines both scheduled and random access, balancing efficiency and responsiveness in resource allocation. Despite significant research on UORA, most studies rely on custom simulators that are not publicly available,…
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Taxonomy
TopicsWireless Networks and Protocols · IoT Networks and Protocols · Bluetooth and Wireless Communication Technologies
