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Control-theoretic adaptive mechanisms for performance optimization of IEEE 802.11 WLANs: design, implementation and experimental evaluation

机译:用于IEEE 802.11 WLaN性能优化的控制理论自适应机制:设计,实现和实验评估

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摘要

The media access control (MAC) layer of the IEEE 802.11 standard specifies a set of parameters that regulate the behavior of the wireless stations when accessing the channel. Although the standard defines a set of recommended values for these parameters, they are statically set and do not take into account the current conditions in the wireless local area network (WLAN) in terms of, e.g., number of contending stations and the traffic they generate, which results in suboptimal performance. In this thesis we propose two novel control theoretic approaches to optimally configure the WLAN parameters based on the dynamically observed network conditions: a Centralized Adaptive Control (CAC) algorithm, whereby the access point (AP) computes the con guration that maximizes performance and signals it to the active stations, and a Distributed Adaptive Control (DAC) algorithm, which is independently employed by each station with the same goal. In contrast to previous proposals, which are mostly based on heuristics, our approaches build upon (i) analytical models of the WLAN performance, used to derive the optimal point of operation of the IEEE 802.11 protocol, and (ii) mathematical foundations from single- and multi-variable control theory, used to design the mechanisms that drive the WLAN to this point of operation. Another key advantage of the proposed algorithms over existing approaches is that they are compliant with the IEEE 802.11 standard and can be implemented with current wireless cards without introducing any modifications into their hardware and/or firmware. We show by means of an exhaustive performance evaluation study that our algorithms maximize the WLAN performance in terms of throughput and delay under a wide set of network conditions, substantially outperforming the standard recommended configuration as well as previous adaptive proposals. Finally, we present our experiences with implementing the proposed adaptive algorithms in a real IEEE 802.11 testbed and discuss the implementation details of the building blocks that comprise these mechanisms. We evaluate their performance by conducting extensive measurements, considering different network conditions in terms of number of nodes, transmission power employed and tra c generated. Based on the obtained results, we provide valuable insights on the performance of the distributed and centralized algorithms and discuss the suitability of these schemes for real deployments. ------------------------------------------------------------------------------------------------------------------------------------------------------------------------
机译:IEEE 802.11标准的媒体访问控制(MAC)层指定一组参数,这些参数在访问信道时调节无线站的行为。尽管标准为这些参数定义了一组建议值,但是它们是静态设置的,并且在竞争站点的数量及其产生的流量方面未考虑无线局域网(WLAN)的当前状况。 ,导致效果欠佳。在本文中,我们提出了两种新颖的控制理论方法,可基于动态观察到的网络状况优化配置WLAN参数:中央自适应控制(CAC)算法,其中,接入点(AP)计算可最大化性能的配置并向其发送信号分配给活动站点的数据,以及分布式自适应控制(DAC)算法,该算法由具有相同目标的每个站点独立采用。与大多数以前基于启发式的提议相比,我们的方法基于(i)WLAN性能的分析模型,用于推导IEEE 802.11协议的最佳操作点,以及(ii)从单和多变量控制理论,用于设计将WLAN驱动到此操作点的机制。与现有方法相比,所提出的算法的另一个关键优势是它们符合IEEE 802.11标准,并且可以在不对硬件和/或固件进行任何修改的情况下使用当前的无线卡来实现。我们通过详尽的性能评估研究表明,在广泛的网络条件下,我们的算法可以在吞吐量和延迟方面最大化WLAN性能,其性能远胜于标准推荐配置和以前的自适应建议。最后,我们介绍了在实际的IEEE 802.11测试平台中实现建议的自适应算法的经验,并讨论了构成这些机制的构件的实现细节。我们通过进行大量测量来评估它们的性能,并在节点数量,使用的传输功率和产生的trac方面考虑不同的网络条件。基于获得的结果,我们提供有关分布式和集中式算法性能的宝贵见解,并讨论这些方案对实际部署的适用性。 -------------------------------------------------- -------------------------------------------------- -------------------------------------------------- ------------------

著录项

  • 作者

    Patras Paul Horatiu;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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