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A congestion control framework for delay- and disruption tolerant networks

机译:延迟和中断容忍网络的拥塞控制框架

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Delay and Disruption Tolerant Networks (DTNs) are networks that experience frequent and long-lived connectivity disruptions. Unlike traditional networks, such as TCP/IP Internet, DTNs are often subject to high latency caused by very long propagation delays (e.g., interplanetary communication) and/or intermittent connectivity. In DTNs there is no guarantee of end-to-end connectivity between source and destination. Such distinct features pose a number of technical challenges in designing core network functions such as routing and congestion control mechanisms. Detecting and dealing with congestion in DTNs is an important problem since congestion can significantly deteriorate DTN performance. Most existing DTN congestion control mechanisms have been designed for a specific DTN application domain and have been shown to exhibit inadequate performance when used in different DTN scenarios and conditions.In this paper, we introduce Smart-DTN-CC, a novel DTN congestion control framework that adjusts its operation automatically based on the dynamics of the underlying network and its nodes. Smart-DTN-CC is an adaptive and distributed congestion aware framework that mitigates congestion using reinforcement learning, a machine learning technique known to be well suited to problems where: (1) the environment, in this case the network, plays a crucial role; and (2) yet, no prior knowledge about the target environment can be assumed, i.e., the only way to acquire information about the environment is to interact with it through continuous online learning.Smart-DTN-CC nodes receive input from the environment (e.g., buffer occupancy, neighborhood membership, etc), and, based on that information, choose an action to take from a set of possible actions. Depending on the selected action's effectiveness in controlling congestion, a reward will be given. Smart-DTN-CC's goal is to maximize the overall reward which translates to minimizing congestion. To our knowledge, Smart-DTN-CC is the first DTN congestion control framework that has the ability to automatically and continuously adapt to the dynamics of the target environment. As demonstrated by our experimental evaluation, Smart-DTN-CC is able to consistently outperform existing DTN congestion control mechanisms under a wide range of network conditions and characteristics. (C) 2019 Elsevier B.V. All rights reserved.
机译:延迟和中断容忍网络(DTN)是遭受频繁且长期存在的连接中断的网络。与传统网络(例如TCP / IP互联网)不同,DTN通常会因非常长的传播延迟(例如行星际通信)和/或间歇性连接而导致高延迟。在DTN中,不能保证源和目标之间的端到端连接。在设计核心网络功能(例如路由和拥塞控制机制)时,这些独特的功能提出了许多技术挑战。在DTN中检测和处理拥塞是一个重要的问题,因为拥塞会大大降低DTN的性能。现有的大多数DTN拥塞控制机制都是为特定的DTN应用领域设计的,并且在不同的DTN场景和条件下使用时,显示出不足的性能。本文介绍一种新型的DTN拥塞控制框架Smart-DTN-CC。会根据基础网络及其节点的动态自动调整其操作。 Smart-DTN-CC是一种自适应分布式分布式拥塞感知框架,它使用强化学习来缓解拥塞,强化学习是一种非常适合于以下问题的机器学习技术:(1)环境,在这种情况下,网络起着至关重要的作用; (2)但是,不能假定您对目标环境有先验知识,即获取有关环境信息的唯一方法是通过连续的在线学习与目标环境进行交互。Smart-DTN-CC节点从环境中接收输入( (例如缓冲区占用率,邻居成员资格等),并根据该信息从一组可能的操作中选择要采取的操作。根据所选操作在控制拥塞方面的有效性,将给予奖励。 Smart-DTN-CC的目标是最大程度地提高总体回报,从而最大程度地减少拥塞。据我们所知,Smart-DTN-CC是第一个DTN拥塞控制框架,能够自动连续地适应目标环境的动态变化。如我们的实验评估所示,Smart-DTN-CC在各种网络条件和特性下都能始终胜过现有的DTN拥塞控制机制。 (C)2019 Elsevier B.V.保留所有权利。

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