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Design of new real-time models for tight upper bound approximation of cell loss ratio in ATM networks

机译:ATM网络中用于信元丢失率的紧密上限近似的新实时模型的设计

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摘要

ATM as a high-speed cell switching technology can support multiple classes of traffic with different quality of service (QoS) requirements and diverse traffic characteristics. A main QoS requirement is the cell loss ratio (CLR). We need a real-time expression for the CLR calculation in ATM networks where the statistical multiplexing is an important factor. The existing analytical methods for the CLR estimation are mostly based on fluid-flow and stationary approximate models. In this paper, we first evaluate these methods against the results obtained through simulation. The simulation is done at the cell level that provides very accurate results with buffer size as a variant. It is shown that the CLR estimation based on existing analytical models are widely overestimated. We have, then, proposed three new approaches that yield significant improvement in the accuracy of the CLR approximation. First, we have found global correction coefficients to compensate for the error of the current analytical methods. Second, we have proposed a new upper bound based on exact modeling of system behavior in the finite buffer case. This is a novel approach that combines fluid-flow and stationary approximate models and outperforms all the previous ones. The accuracy of the proposed model is verified by simulation. Third, we have found a tight piece-wise linear approximation that can be calculated in real-time. We have studied application of these bounds in non-homogeneous as well as homogeneous cases.
机译:ATM作为一种高速信元交换技术,可以支持具有不同服务质量(QoS)要求和多种流量特性的多种流量。 QoS的主要要求是信元丢失率(CLR)。在统计复用是一个重要因素的ATM网络中,我们需要实时表达进行CLR计算。现有的CLR估计分析方法主要基于流体流动和平稳近似模型。在本文中,我们首先对照通过仿真获得的结果评估这些方法。仿真是在单元级别完成的,它提供了非常准确的结果,缓冲区大小也有所不同。结果表明,基于现有分析模型的CLR估计被高估了。然后,我们提出了三种新的方法,这些方法可以显着提高CLR逼近的准确性。首先,我们发现了全局校正系数以补偿当前分析方法的误差。其次,我们基于有限缓冲情况下系统行为的精确建模,提出了一个新的上限。这是一种新颖的方法,将流体流模型和静态近似模型结合在一起,并且性能优于所有以前的模型。仿真验证了所提模型的准确性。第三,我们发现了可以实时计算的紧密分段​​线性逼近。我们已经研究了这些边界在非均匀和均匀情况下的应用。

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