MAC协议教学系统的延迟和成本要求

A. Samant, Venkataramana Badarla, S. K. Yadav, Mythili Vutukuru, P. Khanna, Erik Luther
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引用次数: 0

摘要

在过去的十年中,通信系统的物理层(PHY)随着正交频分复用(OFDM)和多载波聚合等技术的加入而不断发展。这带来了显著的性能改进,但代价是增加了功耗和系统复杂性。为了克服这个问题,人们提出了一系列新的无线网络介质访问控制(MAC)协议。然而,MAC协议的创新速度还不能跟上物理层研究的快速步伐;后者是由各种软件定义无线电(SDR)平台的可用性推动的。这些系统最终进入了教室和实验室,从而为通信工程师提供了一个体验式学习的机会。他们为学生提供了具有成本效益的选择,以获取真实世界的信号,并使用数字信号处理技术对其进行分析。从本质上讲,这对通信工程专业的学生来说,就像声卡对学习音频信号处理的学生所做的那样。另一方面,计算机科学专业的学生只能通过教科书或软件模拟来学习MAC协议。这是因为大多数SDR系统不能满足创建真实世界通信链路所需的严格延迟和性能要求;而为数不多的几所学校的价格也超出了印度工程学院的教室规模。在本文中,我们分析了这种情况,并讨论了MAC层原型系统的新设计空间的出现。本文讨论了该设计空间中系统的关键需求,即延迟、处理速度和成本。最后,本文描述了商业技术的可用性以及与其他需求(如吞吐量和频率敏捷性)的仔细权衡如何使设计满足这些关键需求的系统变得可行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Latency and cost requirements of systems for teaching MAC protocols
Over the past decade, the physical (PHY) layer of communication systems has evolved with the addition of techniques such as orthogonal frequency division multiplexing (OFDM) and multi-carrier aggregation. This has resulted in significant performance improvements, but it has come at the cost of increased power consumption and system complexity. To overcome this problem, a wide range of new Medium Access Control (MAC) protocols have been proposed for wireless networks. However, the speed of innovation in MAC protocols has not been able to keep up with the fast pace of PHY layer research; the latter being fueled by the availability of a variety of Software Defined Radio (SDR) platforms. These systems have eventually made their way into the classrooms and labs, thus giving communication engineers an experiential learning opportunity. They have provided students cost effective options to acquire real-world signals and analyze them using digital signal processing techniques. In essence, this has done for communications engineering students, what the sound card did for students learning audio signal processing. On the other hand, computer science students have been left with the option of learning about MAC protocols only through text books or by using software simulations. This is because most SDR systems do not meet the stringent latency and performance requirements required for creating real-world communication links; and the few that do are priced out of reach for classroom sizes typically found in Indian engineering colleges. In this paper, we analyze this situation at hand and discuss the emergence of a new design space for MAC layer prototyping systems. This paper discusses the key requirements, namely latency, processing speed, and cost, of systems in this design space. Finally, this paper describes how availability of commercial technology and careful trade-off with other requirements, such as throughput and frequency agility, is making it feasible to design a system that meets these key requirements.
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