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Transport layer protocols and architectures for satellite networks

机译:卫星网络的传输层协议和体系结构

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Designing efficient transmission mechanisms for advanced satellite networks is a demanding task, requiring the definition and the implementation of protocols and architectures well suited to this challenging environment. In particular, transport protocols performance over satellite networks is impaired by the characteristics of the satellite radio link, specifically by the long propagation delay and the possible presence of segment losses due to physical channel errors. The level of impact on performance depends upon the link design (type of constellation, link margin, coding and modulation) and operational conditions (link obstructions, terminal mobility, weather conditions, etc.). To address these critical aspects a number of possible solutions have been presented in the literature, ranging from limited modifications of standard protocols (e.g. TCP, transmission control protocol) to completely alternative protocol and network architectures. However, despite the great number of different proposals (or perhaps also because of it), the general framework appears quite fragmented and there is a compelling need of an integration of the research competences and efforts. This is actually the intent of the transport protocols research line within the European SatNEx (Satellite Network of Excellence) project. Stemming from the authors' work on this project, this paper aims to provide the reader with an updated overview of all the possible approaches that can be pursued to overcome the limitations of current transport protocols and architectures, when applied to satellite communications. In the paper the possible solutions are classified in the following categories: optimization of TCP interactions with lower layers, TCP enhancements, performance enhancement proxies (PEP) and delay tolerant networks (DTN). Advantages and disadvantages of the different approaches, as well as their interactions, are investigated and discussed, taking into account performance improvement, complexity, and compliance to the standard semantics. From this analysis, it emerges that DTN architectures could integrate some of the most efficient solutions from the other categories, by inserting them in a new rigorous framework. These innovative architectures therefore may represent a promising solution for solving some of the important problems posed at the transport layer by satellite networks, at least in a medium-to-long-term perspective.
机译:为高级卫星网络设计有效的传输机制是一项艰巨的任务,需要定义和实施非常适合于这一具有挑战性的环境的协议和体系结构。尤其是,卫星网络上的传输协议性能会因卫星无线电链路的特性而受到损害,特别是由于物理信道错误而导致的长传播延迟和段丢失的可能存在。对性能的影响程度取决于链路设计(星座类型,链路余量,编码和调制)和操作条件(链路障碍,终端移动性,天气条件等)。为了解决这些关键方面,在文献中已经提出了许多可能的解决方案,从标准协议(例如TCP,传输控制协议)的有限修改到完全可替代的协议和网络体系结构。然而,尽管提出了许多不同的建议(或也许是因为这样),但总体框架显得十分分散,并且迫切需要将研究能力和工作整合在一起。这实际上是欧洲SatNEx(卓越卫星网络)项目中的传输协议研究线的意图。从作者对该项目的工作出发,本文旨在为读者提供适用于卫星通信时可以克服现有传输协议和体系结构局限性的所有可能方法的最新概述。在本文中,可能的解决方案分为以下几类:与较低层的TCP交互的优化,TCP增强,性能增强代理(PEP)和延迟容忍网络(DTN)。研究和讨论了不同方法的优缺点及其相互作用,同时考虑了性能改进,复杂性以及对标准语义的遵从性。通过此分析,可以发现DTN体系结构可以通过将它们插入新的严格框架中来集成其他类别中一些最有效的解决方案。因此,这些创新的体系结构可能代表一种有希望的解决方案,至少从中长期的角度来看,这些解决方案将解决卫星网络在传输层带来的一些重要问题。

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