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Congestion Control: A Renaissance with Machine Learning

机译:拥堵控制:与机器学习的复兴

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In the past several decades, it has been well known that the Transmission Control Protocol (TCP), even with its modern variants such as CUBIC, may not perform optimally when available bottleneck bandwidth needs to be fully utilized, yet without unnecessarily increasing the end-to-end latency. These observations have led to a recent resurgence of interest in the topic of redesigning congestion control protocols and replacing modern TCP variants using machine learning. In this article, we examine and compare some of the most prominent recent research results on the use of machine learning to redesign congestion control protocols, with an editorial commentary on potential research directions in the near-term future.
机译:在过去的几十年中,众所周知,当需要充分利用的可用瓶颈带宽时,传输控制协议(TCP),即使是其现代变体,也可能无法充分地执行,但是在没有不必要地增加结束 - 到终点。 这些观察结果导致最近利用对重新设计拥塞控制协议的主题的感兴趣,并使用机器学习更换现代TCP变体。 在本文中,我们检查并比较了一些最突出的研究结果对使用机器学习来重新设计拥塞控制协议,在近期未来的潜在研究方向上的编辑评论。

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