Which ML model to choose? Experimental Evaluation for a beyond-5G Traffic Steering case

被引:1
|
作者
Chatzistefanidis, Ilias [1 ]
Makris, Nikos [1 ,2 ]
Passas, Virgilios [1 ,2 ]
Korakis, Thanasis [1 ,2 ]
机构
[1] Univ Thessaly, Dept Elect & Comp Engn, Volos, Greece
[2] Ctr Res & Technol Hellas, Thessaloniki, Greece
基金
欧盟地平线“2020”;
关键词
D O I
10.1109/ICC45041.2023.10279485
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
Beyond 5G and future next-generation networks will have to cope with the ever-growing traffic demand for mobile traffic, as well as low-latency communications. Network densification has been long proposed as a solution for augmenting the available wireless links with more technologies, thus enhancing the available capacity for the end-users. Nevertheless, selecting the optimal split of traffic among the available links is not a trivial decision. Machine Learning (ML) approaches can assist in these decisions, by forecasting metrics collected directly from the RAN, towards predicting the near-future performance, and appropriately selecting the split of traffic. In this work, we evaluate a total of 22 different ML models in such a traffic steering use case, towards determining the solution that yields the best results in terms of accuracy of predictions, training time, and computational resources. We use a real-world testbed prototype based on OpenAirInterface to evaluate our contributions, and use realistic mobility datasets for emulating client mobility. Our results show that the different algorithms can present variations in terms of the achievable throughput, but several can substantially improve the offered wireless network capacity.
引用
收藏
页码:5185 / 5190
页数:6
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