NADA:一个统一的低延迟交互式视频拥塞控制方案

Xiaoqing Zhu, Rong Pan
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引用次数: 28

摘要

低延迟、交互式媒体应用(如视频会议)对拥塞控制提出了一系列独特的挑战。与TCP不同,交互式媒体的传输机制需要快速适应可用带宽的突然变化,适应实时视频编码器的缓慢响应和输出速率波动,并避免网络上的高排队延迟。理想的方案还应该有效地利用来自网络的所有类型的拥塞信号,包括数据包丢失、排队延迟和显式拥塞通知(ECN)标记。本文提出了一种统一的交互式视频拥塞控制方法:网络辅助动态适应(NADA)。在NADA中,发送方根据接收方计算和报告的复合拥塞信号来调节其发送速率,该信号结合了来自网络的隐式(例如,丢失和延迟)和显式(例如,ECN标记)拥塞指示。通过一组一致的发送方适应规则,该方案可以获得高级队列管理方案支持的主动、显式拥塞通知的全部好处。在没有这种通知的情况下,它仍然同样作出反应。大量的仿真研究表明,NADA与各种队列管理方案有很好的交互:传统的滴尾、随机早期检测(RED)、最近提出的CoDel(控制延迟)和PIE(比例积分控制器增强),以及基于预拥塞通知(PCN)的基于令牌桶的随机标记方案。此外,NADA对网络上的变化反应迅速,允许多个竞争视频流之间的加权带宽共享,并在与TCP共存时保持相当大的瓶颈带宽份额。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NADA: A Unified Congestion Control Scheme for Low-Latency Interactive Video
Low-latency, interactive media applications (e.g., video conferencing) present a unique set of challenges for congestion control. Unlike TCP, the transport mechanism for interactive media needs to adapt fast to abrupt changes in available bandwidth, accommodate sluggish responses and output rate fluctuations of a live video encoder, and avoid high queuing delay over the network. An ideal scheme should also make effective use of all types of congestion signals from the network, including packet losses, queuing delay, and explicit congestion notification (ECN) markings. This paper presents a unified approach for congestion control of interactive video: network-assisted dynamic adaptation (NADA). In NADA, the sender regulates its sending rate based on a composite congestion signal calculated and reported by the receiver, which combines both implicit (e.g., loss and delay) and explicit (e.g., ECN marking) congestion indications from the network. Via a consistent set of sender adaptation rules, the scheme can reap the full benefits of proactive, explicit congestion notifications supported by advanced queue management schemes. It remains equally responsive in the absence of such notifications. Extensive simulation studies show that NADA interact well with a wide variety of queue management schemes: conventional drop-tail, random early detection (RED), recently proposed CoDel (controlled delay) and PIE (Proportional Integral controller Enhanced), as well as a token-bucket-based random marking scheme based on Pre-Congestion Notification (PCN). Furthermore, NADA reacts fast to changes over the network, allows for weighted bandwidth sharing among multiple competing video streams, and sustains a substantial share of bottleneck bandwidth when coexisting with TCP.
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