Quantum-Adaptive Scheduling for Multi-Core Network Processors

Yue Zhang, B. Liu, Lei Shi, Jingnan Yao, L. Bhuyan
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引用次数: 1

Abstract

Efficiency and effectiveness are always the emphases of a scheduler, for both link and processor scheduling. Well-known scheduling algorithms such as surplus round robin (SRR) and elastic round robin (ERR) suffer from two fold shortcomings: 1) additional pre-processing queuing delay and post-processing resequencing delay are incurred due to the lack of short-term load-balancing; 2) bursty scheduling is caused due to blind preservation of scheduling history under non-backlogged traffic. In this paper, we propose a quantum-adaptive scheduling (QAS) algorithm, which: 1) synchronizes all the quanta in a fine-grained manner and, 2) adjusts the quanta intelligently based on processor utilization. We theoretically prove that the queuing fairness bound (QFB) for QAS is one third tighter than SRR and ERR. This result approaches the optimal value as obtained in shortest queue first (SQF) algorithm, while still maintaining O(1) complexity. Trace-driven simulations show that QAS reduces average packet delay by 18%~24% while cutting down the resequencing buffer size by more than 40% compared to SRR and ERR.
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多核网络处理器的量子自适应调度
无论是链路调度还是处理器调度,效率和有效性始终是调度程序的重点。众所周知的调度算法,如剩余轮询(SRR)和弹性轮询(ERR)存在两个缺点:1)由于缺乏短期负载均衡,导致预处理排队延迟和后处理重排序延迟;2)突发调度是在非积压情况下由于调度历史的盲目保存造成的。本文提出了一种量子自适应调度(QAS)算法:1)以细粒度方式同步所有量子;2)根据处理器利用率智能调整量子。我们从理论上证明了QAS的排队公平界(QFB)比SRR和ERR严格三分之一。该结果接近于最短队列优先(SQF)算法的最优值,同时仍然保持0(1)复杂度。跟踪驱动的仿真表明,与SRR和ERR相比,QAS减少了平均数据包延迟18%~24%,同时减少了40%以上的重排序缓冲区大小。
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