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首页> 外文期刊>Parallel and Distributed Systems, IEEE Transactions on >Goodput-Aware Load Distribution for Real-Time Traffic over Multipath Networks
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Goodput-Aware Load Distribution for Real-Time Traffic over Multipath Networks

机译:多路径网络上实时流量的Goodput-Aware负载分配

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摘要

Load distribution is a key research issue in deploying the limited network resources available to support traffic transmissions. Developing an effective solution is critical for enhancing traffic performance and network utilization. In this paper, we investigate the problem of load distribution for real-time traffic over multipath networks. Due to the path diversity and unreliability in heterogeneous overlay networks, large end-to-end delay and consecutive packet losses can significantly degrade the traffic flow’s , whereas existing studies mainly focus on the delay or throughput performance. To address the challenging problems, we propose a oodput-ware oad distribui (GALTON) model that includes three phases: (1) path status estimation to accurately sense the quality of each transport link, (2) flow rate assignment to optimize the aggregate goodput of input traffic, and (3) deadline-constrained packet interleaving to mitigate consecutive losses. We present a mathematical formulation for multipath load distribution and derive the solution based on utility theory. The performance of the proposed model is evaluated through semi-physical emulations in Exata involving both real Internet traffic traces and H.264 video streaming. Experimental results show that GALTON outperforms existing traffic distribution models in terms of goodput, video Peak Signal-to-Noise Ratio (PSNR), end-to-end delay, and aggregate loss rate.
机译:在部署可用于支持流量传输的有限网络资源时,负载分配是一个关键的研究问题。开发有效的解决方案对于提高流量性能和网络利用率至关重要。在本文中,我们研究了多路径网络上实时流量的负载分配问题。由于异构覆盖网络中的路径多样性和不可靠性,端到端的较大延迟和连续的数据包丢失会严重降低流量的性能,而现有研究主要集中在延迟或吞吐量性能上。为了解决具有挑战性的问题,我们提出了一个OOD量OAD分配模型(GALTON),该模型包括三个阶段:(1)路径状态估计以准确地感测每个传输链路的质量,(2)流速分配以优化总吞吐量输入流量,以及(3)限期约束的数据包交织以减轻连续丢失。我们提出了一种用于多路径负载分配的数学公式,并基于效用理论推导了解决方案。通过Exata中的半物理仿真(包括实际Internet流量跟踪和H.264视频流)评估了所提出模型的性能。实验结果表明,GALTON在吞吐量,视频峰值信噪比(PSNR),端到端延迟和总丢失率方面优于现有的流量分配模型。

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