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Two efficient packet aggregation mechanisms and QoS support in a slotted dual bus optical ring network

机译:插槽式双总线光环网络中的两种有效的数据包聚合机制和QoS支持

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摘要

In this paper, a novel approach for efficiently supporting IP packets directly into a slotted optical wavelength-division-multiplexing (WDM) layer with several quality of service (QoS) requirements is presented and analyzed. The approach is based on two main features. First, an aggregation cycle is performed at fixed time intervals by assembling several IP packets into a single macro-packet of fixed size, called an aggregate packet. Second, since IP packets have variable size, the aggregation process may allow or not the segmentation of an IP packet if it does not fit into the remaining gap in the aggregate packet. As a key element of our proposition, an efficient QoS support access mechanism is presented. The new QoS control performs aggregation in a loop manner by always beginning the aggregation cycle with the highest priority class. The aggregation cycle ends if the aggregate packet cannot accommodate more IP packets, or if the lowest priority class is reached. We introduce two analytical models that allow us to evaluate the effectiveness of the aggregation technique with and without segmentation. On the other hand, a third analytical model is presented to analyze the standard case (where no aggregation is performed), and comparisons between the three models are carried out. The aggregation models are validated by simulations, and the effect of self-similarity is also analyzed. The application of the proposed approach takes place in a slotted dual bus optical ring network (SDBORN), where we prove that a good fairness and high bandwidth efficiency are achieved, and that only two QoS classes (real-time and non-realtime classes) at the access interface (IP domain) are sufficient in order to fulfill the strict delay requirements of real-time data traffic.
机译:在本文中,提出并分析了一种有效地将IP数据包直接支持到具有多个服务质量(QoS)要求的时隙光波分复用(WDM)层中的新颖方法。该方法基于两个主要功能。首先,通过将几个IP数据包组合成一个固定大小的单个宏数据包(称为聚合数据包),以固定的时间间隔执行聚合周期。其次,由于IP数据包的大小可变,如果IP数据包不适合聚合数据包中的剩余间隙,则聚合过程可以允许或不允许对IP数据包进行分段。作为我们主张的关键要素,提出了一种有效的QoS支持访问机制。通过始终以最高优先级类别开始聚合周期,新的QoS控制以循环方式执行聚合。如果聚合数据包无法容纳更多IP数据包,或者达到最低优先级,则聚合周期结束。我们介绍了两个分析模型,这些模型使我们能够评估有无分段的聚合技术的有效性。另一方面,提出了第三个分析模型来分析标准案例(不执行聚合),并在这三个模型之间进行比较。通过仿真验证了聚集模型,并分析了自相似性的影响。提议的方法的应用发生在有槽双总线光环网(SDBORN)中,在那里我们证明了良好的公平性和高带宽效率,并且只有两个QoS类(实时和非实时类)为了满足实时数据流量的严格延迟要求,访问接口(IP域)上的数据就足够了。

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