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Congestion control in disruption-tolerant networks: A comparative study for interplanetary and terrestrial networking applications

机译:容错网络中的拥塞控制:行星际和地面网络应用的比较研究

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Controlling congestion is critical to ensure adequate network operation and performance. That is especially the case in networks operating in challenged- or extreme environments where episodic connectivity is part of the network's normal operation. Consequently, the "pure" end-to-end congestion control model employed by the Internet is not adequate. Our goal is to study congestion control mechanisms that have been proposed for these so-called disruption tolerant networks, or DTNs. In this paper, we conduct a performance study comparing existing DTN congestion control mechanisms for two main application domains, namely: inter-planetary (IPN) and terrestrial networking applications. Our results confirm that congestion control helps increase message delivery ratio, even in highly congested network scenarios. Furthermore, the results show that existing DTN congestion control mechanisms do not perform well in IPN scenarios. Our study also suggests that good design principles for congestion control in DTN scenarios include: combining reactive and proactive control, using local information instead of global knowledge, and employing mechanisms that are routing protocol independent. One important conclusion from our quantitative study is that there is currently no universal congestion control mechanism that fits all DTN scenarios and applications. (C) 2016 Elsevier B.V. All rights reserved.
机译:控制拥塞对于确保足够的网络运行和性能至关重要。在挑战性或极端环境中运行的网络中尤其如此,突发性连接是网络正常运行的一部分。因此,互联网采用的“纯”端到端拥塞控制模型是不够的。我们的目标是研究针对这些所谓的容错网络或DTN提出的​​拥塞控制机制。在本文中,我们进行了一项性能研究,比较了两个主要应用领域(星际间(IPN)和地面网络应用)中现有DTN拥塞控制机制。我们的结果证实,即使在高度拥塞的网络情况下,拥塞控制也有助于提高消息传递率。此外,结果表明,现有的DTN拥塞控制机制在IPN场景中表现不佳。我们的研究还表明,DTN场景中拥塞控制的良好设计原则包括:组合反应性和主动控制,使用本地信息而不是全局知识以及采用与路由协议无关的机制。我们的定量研究得出的一个重要结论是,目前没有适合所有DTN场景和应用的通用拥塞控制机制。 (C)2016 Elsevier B.V.保留所有权利。

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