重传延迟对IEEE 802.1le无线网络多层视频流的影响

S. Sitharaman, K. Anantharaman
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引用次数: 9

摘要

在本文中,我们寻求建立基于增强MAC分布式协调功能(EDCF)的IEEE 802.11e QAP/QSTA传输多层视频帧的重传延迟的概率边界。我们考虑使用混合FEC/ARQ错误检测和控制的端到端多层视频流。在IEEE 802.11e MAC EDCF的多个优先级下,我们首先建立了给定节点数量的稳态冲突概率和争用解决延迟。介绍了时变瑞利慢衰落信道误差模型,并研究了它对MAC EDCF传输的影响。对于视频传输,我们使用前文导出的MAC延迟分布作为业务分布,采用队列首(head-of-line, HOL)优先排队原则对EDCF MAC视频队列的期望等待时间进行建模。MAC EDCF视频(基础层)总排队延迟是高优先级语音帧的期望等待时间、最大努力数据的业务残差和视频帧在HOL队列的期望等待时间的总和。接下来,我们将接收端的视频重传事件建模为重传帧的更新-奖励过程,以确定成功更新事件之间的“传播”时间。“传播”时间实际上是我们寻找用于重传的单个视频帧的概率重传边界。我们使用内部多媒体移动通信平台(MMCP)验证了我们的模型和分析边界,该平台完全用软件编写,用于研究IEEE 802.11和802.11e MAC的MAC和传输之间的跨层互连。MMCP目前支持MPEG4单层和FGS双层,具有并发语音和视频流功能。我们的模型,当与基于接收器的通道反馈相结合时,可以产生无抖动,速率自适应和保证的“基本”视频质量。
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Impact of Retransmission Delays on Multilayer Video Streaming over IEEE 802.1le Wireless Networks
In this paper, we seek to establish probabilistic bounds of retransmission delays for transporting multilayer video frames over IEEE 802.11e QAP/QSTA with enhanced MAC distributed coordination function (EDCF). We consider an end-to-end multilayer video streaming that uses hybrid FEC/ARQ error detection and control. Under multiple priority levels of IEEE 802.11e MAC EDCF, we first establish steady-state collision probabilities and contention resolution delays, given the number of nodes. We introduce a time-varying Rayleigh slow-fading channel error model and studying its effect on MAC EDCF transmissions. For video transmissions, we model the expected waiting time of EDCF MAC video queue using head-of-line (HOL) priority queueing discipline using the MAC delay distribution derived earlier as service distribution. The total MAC EDCF video (base layer) queueing delay is the sum of expected waiting time of high-priority voice frames, service residual of best-effort data and the expected waiting time of video frames at HOL queue. Next, we model video retransmission events at receiver as renewal-reward process of frame(s) identified for retransmission to establish the "spread"-time between successful renewal events. The "spread"-time is indeed the probabilistic retransmission bound that we seek for a single video frame identified for retransmission. We verify our model and analytical bounds using an in-house multimedia mobile communication platform (MMCP), written entirely in software to study the cross-layer interworking between MAC and transport for IEEE 802.11 and 802.11e MAC. MMCP currently supports MPEG4 single-layer and FGS two-layer with concurrent voice and video streaming capabilities. Our model, when combined with a receiver-based channel feedback, can yield a jitter-free, rate-adaptive and guaranteed "base" video quality.
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