Logical Link Control and Channel Scheduling for Multichannel Underwater Sensor Networks

Jun Li, Mylène Toulgoat, Yifeng Zhou, L. Lamont
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引用次数: 2

Abstract

With recent developments in terrestrial wireless networks and advances in acoustic communications, multichannel technologies have been proposed to be used in underwater networks to increase data transmission rate over bandwidth-limited underwater channels. Due to high bit error rates in underwater networks, an efficient error control technique is critical in the logical link control (LLC) sublayer to establish reliable data communications over intrinsically unreliable underwater channels. In this paper, we propose a novel protocol stack architecture featuring cross-layer design of LLC sublayer and more efficient packetto-channel scheduling for multichannel underwater sensor networks. In the proposed stack architecture, a selective-repeat automatic repeat request (SR-ARQ) based error control protocol is combined with a dynamic channel scheduling policy at the LLC sublayer. The dynamic channel scheduling policy uses the channel state information provided via cross-layer design. It is demonstrated that the proposed protocol stack architecture leads to more efficient transmission of multiple packets over parallel channels. Simulation studies are conducted to evaluate the packet delay performance of the proposed cross-layer protocol stack architecture with two different scheduling policies: the proposed dynamic channel scheduling and a static channel scheduling. Simulation results show that the dynamic channel scheduling used in the cross-layer protocol stack outperforms the static channel scheduling. It is observed that, when the dynamic channel scheduling is used, the number of parallel channels has only an insignificant impact on the average packet delay. This confirms that underwater sensor networks will benefit from the use of multichannel communications.
多通道水下传感器网络的逻辑链路控制与信道调度
随着近年来地面无线网络的发展和水声通信的进步,多信道技术被提出用于水下网络,以提高带宽有限的水下信道的数据传输速率。由于水下网络的高误码率,在逻辑链路控制(LLC)子层中,为了在本质上不可靠的水下信道上建立可靠的数据通信,有效的错误控制技术至关重要。本文针对多通道水下传感器网络,提出了一种基于LLC子层跨层设计和更高效的分组信道调度的协议栈架构。在提出的栈结构中,基于选择性重复自动重复请求(SR-ARQ)的错误控制协议与LLC子层的动态信道调度策略相结合。动态通道调度策略使用通过跨层设计提供的通道状态信息。实验结果表明,所提出的协议栈结构可以在并行信道上更有效地传输多个数据包。采用动态信道调度和静态信道调度两种不同的调度策略,对所提出的跨层协议栈体系结构的数据包延迟性能进行了仿真研究。仿真结果表明,在跨层协议栈中采用动态信道调度优于静态信道调度。可以观察到,当采用动态信道调度时,并行信道的数量对平均数据包延迟的影响不显著。这证实了水下传感器网络将受益于多通道通信的使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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