Performance modeling and analysis of high throughput wireless media access with QoS in noisy channel for different traffic conditions

Raja Karmakar, Pravati Swain, Samiran Chattopadhyay, Sandip Chakraborty
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引用次数: 6

Abstract

The high throughput wireless extensions based on IEEE 802.11 or wireless-fidelity (Wi-Fi) support varieties of physical and media access control (MAC) sublayer features to boost up the physical data rate in wireless media. These include multiple input multiple out (MIMO) spatial multiplexing and spatial diversity, channel bonding, short guard intervals, advanced modulation and coding schemes (MCS), frame aggregations and block acknowledgements; for different Wi-Fi extensions like IEEE 802.11n, IEEE 802.11ac and IEEE 802.11ad. The existing studies show that although such physical extensions improve data rates, they have internal trade-offs in channel error and sustainability that directly impact the MAC layer frame aggregation and block acknowledgement performance. In this paper, we model the impact of the channel errors over MAC layer channel access with frame aggregation and block acknowledgement, considering the standard IEEE 802.11 service class differentiation for quality of service (QoS). The evolution of aggregated frame transmission has been modeled using a three dimension Markov chain diagram, considering channel error from physical layer and different traffic conditions. The model is validated through simulation results. The mathematical model is further explored to observe and analyze the impact of channel error over the aggregated frame based MAC scheduling with different QoS performance parameters, like channel throughput, frame loss probability and channel access delay. We observe that frame aggregation sometimes shows negative impact on channel access performance that demands the need for designing an adaptive aggregation strategy.
噪声信道下具有QoS的高吞吐量无线媒体接入性能建模与分析
基于IEEE 802.11或无线保真度(Wi-Fi)的高吞吐量无线扩展支持多种物理和媒体访问控制(MAC)子层特性,以提高无线媒体中的物理数据速率。这些包括多输入多输出(MIMO)空间多路复用和空间分集、信道绑定、短保护间隔、高级调制和编码方案(MCS)、帧聚合和块确认;用于不同的Wi-Fi扩展,如IEEE 802.11n, IEEE 802.11ac和IEEE 802.11ad。现有的研究表明,尽管这种物理扩展提高了数据速率,但它们在信道错误和可持续性方面存在内部权衡,直接影响MAC层帧聚合和块确认性能。在本文中,我们考虑到标准IEEE 802.11服务分类对服务质量(QoS)的区分,用帧聚合和块确认对MAC层通道访问的信道错误的影响进行了建模。考虑物理层的信道误差和不同的通信条件,采用三维马尔可夫链图对聚合帧传输的演化进行了建模。仿真结果验证了该模型的有效性。进一步探索了数学模型,观察和分析了信道错误对具有不同QoS性能参数(如信道吞吐量、帧丢失概率和信道访问延迟)的基于聚合帧的MAC调度的影响。我们观察到帧聚合有时会对信道访问性能产生负面影响,这就需要设计一种自适应聚合策略。
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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