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Performance evaluation of underwater MAC protocols: From simulation to at-sea testing

机译:水下MAC协议的性能评估:从仿真到海上测试

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Many MAC protocols have been proposed for underwater sensor networks, usually variants of well-known terrestrial approaches. Although performance comparisons among different MAC protocols have been estimated by simulations, e.g. [1], [2], no extensive comparison has yet been performed by means of at-sea experiments. Simulations can only capture a subset of the total environmental variability, resulting in an approximate and generally simplified model of the acoustic channel and its dynamics. Moreover, they do not generally capture constraints introduced by the actual hardware and this can significantly impact the overall protocol performance (e.g., limitations in the packet format and size, latency introduced by the hardware, control overhead associated with a given acoustic modem operation, etc.). For these reasons, at-sea experiments are needed to validate not only the relative performance of different classes of MAC protocols but also the validity of the simulation process itself. We have developed a framework to seamlessly simulate, emulate and test (at-sea) a variety of communication protocols. Three candidate underwater MAC protocols (CSMA, T-Lohi and DACAP) have been implemented on our framework (representing simple, intermediate and fully negotiated protocols). We conducted various tests in the waters surrounding Pianosa island during September 2010, comprising both single and muti-hop messaging, under various types of application loads. We then simulated exactly the same scenarios and settings in order to compare simulation and at-sea trial results. We show that if an inadequate acoustic channel model is used, or (even more importantly) if the overheads and delays due to the specific hardware are not included, there is a significant gap between actual at-sea and simulation results. Once accurate models for the channel and the modem are introduced into the simulator, a significant reduction in the gap is achieved. Moreover, we show how overcoming some of the-- limitations of commercial acoustic modems is expected to result in much better system performance in terms of throughput efficiency and packet latency.
机译:已经为水下传感器网络提出了许多MAC协议,通常是众所周知的地面方法的变体。尽管已经通过仿真估计了不同MAC协议之间的性能比较,例如[1],[2],还没有通过海上实验进行广泛的比较。模拟只能捕获总环境可变性的一个子集,从而得到声通道及其动力学的近似且通常简化的模型。此外,它们通常不会捕获实际硬件引入的约束,并且这可能会严重影响总体协议性能(例如,数据包格式和大小的限制,硬件引入的延迟,与给定的声波调制解调器操作相关的控制开销等)。 )。由于这些原因,不仅需要进行海上实验来验证不同类别的MAC协议的相对性能,而且还要验证仿真过程本身的有效性。我们开发了一个框架,可以无缝模拟,仿真和测试(海上)各种通信协议。在我们的框架上已实现了三种候选的水下MAC协议(CSMA,T-Lohi和DACAP)(代表简单,中间和完全协商的协议)。我们于2010年9月在Pianosa岛周围的水域中进行了各种测试,包括在各种类型的应用程序负载下的单跳消息和多跳消息。然后,我们模拟了完全相同的场景和设置,以比较模拟结果和海上试验结果。我们表明,如果使用了不充分的声学通道模型,或者(更重要的是)如果不包括由于特定硬件引起的开销和延迟,则实际的海上和模拟结果之间会有很大的差距。一旦将通道和调制解调器的准确模型引入仿真器,即可显着减小间隔。此外,我们展示了如何克服某些- -- 商业声学调制解调器的局限性有望在吞吐量效率和数据包延迟方面带来更好的系统性能。

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