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首页> 外文期刊>Parallel and Distributed Systems, IEEE Transactions on >Modeling and Optimization of the IEEE 802.15.4 Protocol for Reliable and Timely Communications
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Modeling and Optimization of the IEEE 802.15.4 Protocol for Reliable and Timely Communications

机译:可靠和及时通信的IEEE 802.15.4协议的建模和优化

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摘要

Distributed processing through ad hoc and sensor networks is having a major impact on scale and applications of computing. The creation of new cyber-physical services based on wireless sensor devices relies heavily on how well communication protocols can be adapted and optimized to meet quality constraints under limited energy resources. The IEEE 802.15.4 medium access control protocol for wireless sensor networks can support energy efficient, reliable, and timely packet transmission by a parallel and distributed tuning of the medium access control parameters. Such a tuning is difficult, because simple and accurate models of the influence of these parameters on the probability of successful packet transmission, packet delay, and energy consumption are not available. Moreover, it is not clear how to adapt the parameters to the changes of the network and traffic regimes by algorithms that can run on resource-constrained devices. In this paper, a Markov chain is proposed to model these relations by simple expressions without giving up the accuracy. In contrast to previous work, the presence of limited number of retransmissions, acknowledgments, unsaturated traffic, packet size, and packet copying delay due to hardware limitations is accounted for. The model is then used to derive a distributed adaptive algorithm for minimizing the power consumption while guaranteeing a given successful packet reception probability and delay constraints in the packet transmission. The algorithm does not require any modification of the IEEE 802.15.4 medium access control and can be easily implemented on network devices. The algorithm has been experimentally implemented and evaluated on a testbed with off-the-shelf wireless sensor devices. Experimental results show that the analysis is accurate, that the proposed algorithm satisfies reliability and delay constraints, and that the approach reduces the energy consumption of the network under both stationary and transient conditions. Specif- cally, even if the number of devices and traffic configuration change sharply, the proposed parallel and distributed algorithm allows the system to operate close to its optimal state by estimating the busy channel and channel access probabilities. Furthermore, results indicate that the protocol reacts promptly to errors in the estimation of the number of devices and in the traffic load that can appear due to device mobility. It is also shown that the effect of imperfect channel and carrier sensing on system performance heavily depends on the traffic load and limited range of the protocol parameters.
机译:通过ad hoc和传感器网络进行的分布式处理对计算的规模和应用产生了重大影响。基于无线传感器设备的新的网络物理服务的创建在很大程度上取决于如何调整和优化通信协议,以在有限的能源资源下满足质量约束。用于无线传感器网络的IEEE 802.15.4介质访问控制协议可以通过并行和分布式调整介质访问控制参数来支持节能,可靠和及时的数据包传输。这样的调整是困难的,因为没有这些参数对成功分组传输的概率,分组延迟和能量消耗的影响的简单而准确的模型。此外,尚不清楚如何通过可在资源受限设备上运行的算法使参数适应网络和流量状况的变化。在本文中,提出了一个马尔可夫链来通过简单的表达式对这些关系进行建模而又不放弃准确性。与以前的工作相反,由于硬件限制,导致了重传,确认,不饱和流量,数据包大小和数据包复制延迟的数量有限。然后,该模型用于推导分布式自适应算法,以最小化功耗,同时保证给定成功的分组接收概率和分组传输中的延迟约束。该算法不需要对IEEE 802.15.4媒体访问控制进行任何修改,并且可以在网络设备上轻松实现。该算法已在具有现成无线传感器设备的测试平台上进行了实验性实施和评估。实验结果表明,该分析是准确的,所提出的算法满足可靠性和时延约束,并且该方法降低了稳态和瞬态条件下网络的能耗。特别是,即使设备数量和流量配置发生了急剧变化,建议的并行和分布式算法也可以通过估计繁忙的信道和信道访问概率,使系统在接近其最佳状态的情况下运行。此外,结果表明该协议会对设备数量的估计错误以及由于设备移动性而可能出现的流量负载迅速做出反应。还表明,不完善的信道和载波侦听对系统性能的影响在很大程度上取决于通信量负载和协议参数的有限范围。

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