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2024 | OriginalPaper | Chapter

On the Analysis of Computational Delays in Reinforcement Learning-Based Rate Adaptation Algorithms

Authors : Ricardo Trancoso, João Pinto, Ruben Queiros, Helder Fontes, Rui Campos

Published in: Simulation Tools and Techniques

Publisher: Springer Nature Switzerland

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Abstract

Several research works have applied Reinforcement Learning (RL) algorithms to solve the Rate Adaptation (RA) problem in Wi-Fi networks. The dynamic nature of the radio link requires the algorithms to be responsive to changes in link quality. Delays in the execution of the algorithm due to implementional details may be detrimental to its performance, which in turn may decrease network performance. These delays can be avoided to a certain extent. However, this aspect has been overlooked in the state of the art when using simulated environments, since the computational delays are not considered. In this paper, we present an analysis of computational delays and their impact on the performance of RL-based RA algorithms, and propose a methodology to incorporate the experimental computational delays of the algorithms from running in a specific target hardware, in a simulation environment. Our simulation results considering the real computational delays showed that these delays do, in fact, degrade the algorithm’s execution and training capabilities which, in the end, has a negative impact on network performance.

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Literature
1.
go back to reference IEEE standard for information technology–telecommunications and information exchange between systems local and metropolitan area networks–specific requirements part 11: Wireless LAN medium access control (MAC) and physical layer (PHY) specifications amendment 1: Enhancements for high-efficiency WLAN. IEEE Std. 802.11ax-2021 (Amendment to IEEE Std. 802.11-2020), pp. 1–767 (2021). https://doi.org/10.1109/IEEESTD.2021.9442429 IEEE standard for information technology–telecommunications and information exchange between systems local and metropolitan area networks–specific requirements part 11: Wireless LAN medium access control (MAC) and physical layer (PHY) specifications amendment 1: Enhancements for high-efficiency WLAN. IEEE Std. 802.11ax-2021 (Amendment to IEEE Std. 802.11-2020), pp. 1–767 (2021). https://​doi.​org/​10.​1109/​IEEESTD.​2021.​9442429
Metadata
Title
On the Analysis of Computational Delays in Reinforcement Learning-Based Rate Adaptation Algorithms
Authors
Ricardo Trancoso
João Pinto
Ruben Queiros
Helder Fontes
Rui Campos
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-57523-5_23

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