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Channel adaptive real-time medium access control protocols for industrial wireless networks.

机译:用于工业无线网络的信道自适应实时媒体访问控制协议。

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Wireless technology is increasingly finding its way into industrial communication because of the tremendous advantages it is capable of offering. However, the high bit error rate characteristics of wireless channel due to conditions, such as attenuation, noise, channel fading and interference seriously impact the timeliness and reliability guarantee that need to be provided for real-time traffic. Existing wireless protocols either do not adapt well to erroneous channel conditions or do not provide real-time guarantees. The goal of our work is to design and evaluate novel real-time MAC (Medium Access Control) protocols for combined scheduling of periodic and aperiodic messages taking into account the time-varying channel condition.; Our first contribution is the design of a combined scheduling algorithm that exploits both spatial and temporal diversity of the wireless channel through "exchange of slots" among nodes, to effectively mitigate bursty channel error conditions. Simulation results show that the proposed algorithm achieves significant improvements in message success ratio compared to baseline protocols under a wide range of traffic and channel conditions.; The second contribution assumes a two-level hierarchical network in which nodes are grouped into clusters and the communication occurs within each cluster and across clusters. The goal is to maximize the schedulability of intra- and inter-cluster periodic and aperiodic messages with deadline guarantees. In this context, we propose an Adaptive protocol that maximizes the channel utilization by enabling parallel transmissions in a collision-free manner, in conjunction with the use of the slot-exchange technique to actively combat the erroneous channel conditions. Through simulation studies, we show that the proposed Adaptive protocol achieves significant improvement in packet loss performance compared to the baseline protocols that exploit complete parallelism and full exchange, for a wide range of channel conditions.; The future work includes: (i) Formulation of the MAC scheduling problem to a n-level hierarchical network and developing novel scheduling algorithms (ii) Extending the scheduling problem to account for node mobility and developing mobility-aware MAC protocols.
机译:由于无线技术具有巨大的优势,因此越来越多地进入工业通信。然而,由于诸如衰减,噪声,信道衰落和干扰之类的条件而导致的无线信道的高误码率特性严重影响了实时业务所需的及时性和可靠性保证。现有的无线协议或者不能很好地适应错误的信道条件,或者不能提供实时保证。我们的工作目标是设计和评估新颖的实时MAC(媒体访问控制)协议,以考虑到时变信道条件,对周期性和非周期性消息进行联合调度。我们的第一项贡献是设计了一种组合调度算法,该算法通过节点之间的“时隙交换”来利用无线信道的空间和时间分集,以有效缓解突发信道错误情况。仿真结果表明,与基线协议相比,该算法在较大的业务量和信道条件下,均能显着提高消息成功率。第二个贡献假设一个两级分层网络,其中节点被分组为集群,并且通信发生在每个集群内以及跨集群。目的是在保证截止日期的情况下,最大化集群内和集群间定期和非定期消息的可调度性。在这种情况下,我们提出了一种自适应协议,该协议通过使用无冲突方式启用并行传输,并结合使用时隙交换技术来主动应对错误的信道条件,从而最大限度地提高了信道利用率。通过仿真研究,我们表明,与在广泛的信道条件下利用完全并行性和完全交换的基线协议​​相比,所提出的自适应协议在丢包性能上有了显着改善。未来的工作包括:(i)将MAC调度问题表述为n级分层网络并开发新颖的调度算法(ii)扩展调度问题以解决节点移动性并开发可感知移动性的MAC协议。

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