利用k -均值聚类判别TCP丢失的经验

M. Sooriyabandara, P. Kulkarni, Lu Li, T. Lewis, T. Farnham, R. Haines
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引用次数: 2

摘要

TCP等协议依赖于丢失检测和恢复算法来提供可靠的数据传输服务。TCP使用重传超时或接收重复确认来检测丢失事件。由于TCP对丢包的原因没有任何明确的了解,因此它总是将其视为拥塞指示,然后保守地调整发送速率以保持公平性。这通常会损害在无线损耗条件下可实现的吞吐量。这个问题可以通过使TCP源智能化来解决,这样在检测到数据包丢失时,它将能够区分它是什么类型的丢失(拥塞丢失或无线丢失)并做出相应的反应。本文提出了一种在线学习解决方案,仅使用TCP层和源端可用的信息来区分无线损耗和拥塞损耗。基于仿真的初步研究结果表明,将K-Means聚类方法与启发式方法相结合的算法能够在各种损失场景下以更高的精度分类损失类型,并且在高无线损耗条件下提供了显着的性能改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experiences with discriminating TCP loss using K-Means clustering
Protocols such as TCP depend on loss detection and recovery algorithms to provide a reliable data delivery service. TCP detects loss events using either retransmission timeout or receipt of duplicate acknowledgements. Since, TCP does not have any explicit knowledge about the cause of packet loss, it always treats it as a congestion indication and then adjusts sending rate conservatively to maintain fairness. This often compromises achievable throughput under wireless loss conditions. This problem can be solved by making the TCP source intelligent so that on detecting a packet loss, it will be able to distinguish what type of loss it is (a Congestion loss or a Wireless loss) and react accordingly. This paper presents an online-learning solution to discriminate wireless loss from congestion loss solely using the information available at the TCP layer and at the source only. Initial results obtained from a simulation based study show that the proposed algorithm which combines K-Means clustering approach together with heuristics is capable of classifying loss types to a higher degree of accuracy under various loss scenarios and provides significant performance improvements under high wireless loss conditions.
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