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Multipath TCP over LEO satellite networks

机译:LEO卫星网络上的多路径TCP

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Low earth orbit (LEO) satellite networks like Iridium have played a pivotal role in providing ubiquitous network access services to areas without terrestrial infrastructure because of their potential for global coverage and high bandwidth availability. With low orbit and short range as compared to geostationary satellites, LEO satellites are accessible by mobile devices with limited transmission power and small gain antennas. The drawback, however, is that LEO satellites move fast across the sky with average contact time in the order of 10 minutes, thus requiring frequent handover from one satellite to the next. To achieve smooth handover and efficiently utilize constellation capacity, we propose to use Multipath TCP (MPTCP) in LEO systems and maintain parallel, simultaneous connections between terrestrial handpoints via multiple satellites. In this paper, we discuss the feasibility of using MPTCP over LEO satellite networks and propose a framework of MPTCP-Routing design. Then the performance of this protocol is evaluated through simulation. We show that compared to traditional “single-path” TCP, MPTCP significantly improves throughput performance and prevents the interruption of transmission during handover. Furthermore, we show that our MPTCP-Routing interaction is essential for the end-to-end session to quickly recover from handover.
机译:铱等低地球轨道(LEO)卫星网络在向无地面基础设施的区域提供普遍存在的网络访问服务方面发挥了关键作用,因为它们具有全球覆盖范围和高带宽可用性的潜力。与对地静止卫星相比,由于低轨道和近距离,LEO卫星可通过发射功率有限且增益天线较小的移动设备访问。但是,缺点是LEO卫星在天空中移动很快,平均接触时间约为10分钟,因此需要频繁地从一颗卫星切换到另一颗卫星。为了实现平滑切换并有效利用星座容量,我们建议在LEO系统中使用多路径TCP(MPTCP),并通过多个卫星保持地面切换点之间的并行,同时连接。在本文中,我们讨论了在LEO卫星网络上使用MPTCP的可行性,并提出了MPTCP路由设计的框架。然后通过仿真评估该协议的性能。我们证明,与传统的“单路径” TCP相比,MPTCP显着提高了吞吐量性能并防止了切换过程中传输的中断。此外,我们证明了MPTCP-Routing交互对于端到端会话从切换中快速恢复至关重要。

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