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Cooperative End-to-end Congestion Control in Heterogeneous Wireless Networks

机译:异构无线网络中的协作端到端拥塞控制

摘要

Sharing the resources of multiple wireless networks with overlapped coverage areas has a potential of improving the transmission throughput. However, in the existing frameworks, the improvement cannot be achieved in congestion scenarios because of independent congestion control procedures among the end-to-end paths. Although various network characteristics make the congestion control complex, this variety can be useful in congestion avoidance if the networks cooperate with each other. When congestion happens in an end-to-end path, it is inevitable to have a packet transmission rate less than the minimum requested rate due to congestion window size adjustments. Cooperation among networks can help to avoid this problem for better service quality. When congestion is predicted for one path, some of the on-going packets can be sent over other paths instead of the congested path. In this way, the traffic can be shifted from a congested network to others, and the overall transmission throughput does not degrade in a congestion scenario. However, cooperation is not always advantageous since the throughput of cooperative transmission in an uncongested scenario can be less than that of non-cooperative transmission due to cooperation costs such as cooperation setup time, additional signalling for cooperation, and out-of-order packet reception. In other words, a trade-off exists between congestion avoidance and cooperation cost. Thus, cooperation should be triggered only when it is beneficial according to congestion level measurements. In this research, our aim is to develop an efficient cooperative congestion control scheme for a heterogeneous wireless environment. To this end, a cooperative congestion control algorithm is proposed, in which the state of an end-to-end path is provided at the destination terminal by measuring the queuing delay and estimating the congestion level. The decision on when to start/stop cooperation is made based on the network characteristics, instantaneous traffic condition, and the requested quality of service (QoS). Simulation results demonstrate the throughput improvement of the proposed scheme over non-cooperative congestion control.
机译:共享覆盖范围重叠的多个无线网络的资源具有改善传输吞吐量的潜力。但是,在现有的框架中,由于端到端路径之间的独立拥塞控制程序,在拥塞场景中无法实现改善。尽管各种网络特性使拥塞控制变得复杂,但是如果网络相互协作,则这种变化对于避免拥塞很有用。当在端到端路径中发生拥塞时,由于拥塞窗口大小的调整,不可避免地要使数据包传输速率小于最小请求速率。网络之间的合作可以帮助避免此问题,从而提高服务质量。当预测一条路径出现拥塞时,可以通过其他路径(而不是拥塞的路径)发送一些正在进行的数据包。这样,可以将流量从拥塞的网络转移到其他网络,并且在拥塞情况下总体传输吞吐量不会降低。但是,合作并非总是有利的,因为由于合作成本(例如合作建立时间,用于合作的附加信令和乱序的分组接收),在未拥挤的情况下合作传输的吞吐量可能小于非合作传输的吞吐量。 。换句话说,在避免拥塞和合作成本之间存在折衷。因此,仅在根据拥塞程度测量结果有益时才应触发合作。在这项研究中,我们的目标是为异构无线环境开发一种有效的协作拥塞控制方案。为此,提出了一种协作拥塞控制算法,其中通过测量排队延迟并估计拥塞程度,在目的终端提供端到端路径的状态。根据网络特性,瞬时流量状况和请求的服务质量(QoS)决定何时开始/停止合作。仿真结果证明了该方案在非合作拥塞控制方面的吞吐量提高。

著录项

  • 作者

    Mohammadizadeh Neda;

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  • 年度 2013
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  • 原文格式 PDF
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