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General Window-Based Congestion Control: Buffer Occupancy, Network Efficiency and Packet Loss

机译:基于窗口的常规拥塞控制:缓冲区占用率,网络效率和数据包丢失

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High speed networks with long distance present a unique environment where TCP have a problem under-utilizing the bandwidth of bottleneck link. To remedy this problem, many proposals, such as window-based mechanisms (HSTCP and STCP), rate-based ones (Fast TCP) and router-assistant ones (XCP), have been suggested. The recent researches show that the buffer size in routers heavily affects the performances of HSTCP, especially network efficiency. This paper studies the performances of general window-based mechanisms, such as buffer occupancy, network efficiency and packet loss. The study of buffer occupancy shows that large increment function and small buffer size will result in pseudo-congestion, from which HSTCP and Slow Start of TCP suffer, under-utilizing the capacity of bottleneck link. We propose Asymptotic Square Increase (ASI) mechanism, whose increment function is an increase additive function. Not to cause pseudo-congestion, a design principle of the buffer size of routers is given for the increment function of Additive Increase (AI), Multiplicative Increase (MI) and ASI. In this paper, the study of network efficiency shows that the concave increase mechanisms can obtain more network efficiency at smaller cost of packet loss than additive and convex ones.
机译:长距离的高速网络存在一个独特的环境,其中TCP在利用瓶颈链路的带宽下存在问题。为了解决这个问题,已经提出了许多提案,例如基于窗口的机制(HSTCP和STCP),速率为基于TCP)和路由器 - 助手(XCP)。最近的研究表明,路由器中的缓冲区大小严重影响HSTCP的性能,尤其是网络效率。本文研究了一般窗口的机制的性能,例如缓冲占用,网络效率和丢包。缓冲占用率的研究表明,较大的增量函数和小缓冲尺寸将导致伪拥塞,HSTCP和TCP的慢速开始,利用瓶颈链路的容量。我们提出了渐近方增加(ASI)机制,其增量函数是增加的添加剂功能。不引起伪拥堵,给出了路由器的缓冲尺寸的设计原理,用于增量增加(AI),乘法增加(MI)和ASI。在本文中,网络效率的研究表明,凹入的增加机制可以以比附加和凸起的丢包成本更小的网络效率。

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