通过低层次物理层访问的水声网络的完全重构

Filippo Campagnaro, Roberto Francescon, O. Kebkal, P. Casari, K. Kebkal, M. Zorzi
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引用次数: 2

摘要

水声通信实验通常涉及物理层和数据链路层的自定义方案和协议的实现。然而,大多数商用调制解调器专注于提供可靠或优化的通信链路,而不是允许调制和编码方案的低级重新配置或重新编程。因此,物理层通常是作为一个封闭的、不可重新编程的黑盒提供的,用户只能通过特定的接口访问。虽然软件定义调制解调器将是克服这一问题的最终解决方案,但使用专有调制格式访问调制解调器传输的符号已经开辟了许多研究机会,例如,针对信道编码方案和通信协议的跨层设计和优化。在本文中,我们采用后一种方法。我们考虑商用EvoLogics调制解调器,由自定义固件版本驱动,该版本绕过调制解调器应用的信道编码方法,并允许用户将传输比特率设置为给定集合内的任何所需值。这使得在不同比特率的情况下评估不同的编码方案成为可能。我们的研究结果表明,自定义固件提供了足够的灵活性来测试不同的编码方案和比特率配置,通过提供对正确解码和损坏符号的直接访问,可以在接收器上分离以进行进一步处理。此外,我们还表明,DESERT Underwater框架也可以通过在更复杂的网络实验中使用低级物理层访问来利用相同的灵活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Full Reconfiguration of Underwater Acoustic Networks through Low-Level Physical Layer Access
Underwater acoustic communications experiments often involve custom implementations of schemes and protocols for the physical and data link layers. However, most commercial modems focus on providing reliable or optimized communication links, rather than on allowing low-level reconfiguration or reprogramming of modulation and coding schemes. As a result, the physical layer is typically provided as a closed, non-reprogrammable black box, accessible by the user only through a specific interface. While software-defined modems would be the ultimate solution to overcome this issue, having access to the symbols transmitted by the modems using a proprietary modulation format already opens up a number of research opportunities, e.g., aimed at the cross-layer design and optimization of channel coding schemes and communication protocols. In this paper, we take the latter approach. We consider the commercial EvoLogics modem, driven by a custom firmware version that bypasses the channel coding methods applied by the modem, and allows the user to set the transmit bit rate to any desired value within a given set. This makes it possible to evaluate different coding schemes in the presence of different bit rates. Our results show that the custom firmware offers sufficient flexibility to test different configurations of the coding schemes and bit rates, by providing direct access both to correctly decoded and to corrupted symbols, which can be separated at the receiver for further processing. In addition, we show that the DESERT Underwater framework can also leverage the same flexibility by employing low-level physical layer access in more complex networking experiments.
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