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Loss estimation and control mechanism in buff erless optical packet-switched networks based on multilayer perceptron

机译:基于多层感知器的无增益光分组交换网络的损耗估计和控制机制

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摘要

Artificial neural networks (ANNs) are well-known estimators for the output of broad range of complex systems and functions. In this paper, a common ANN architecture called multilayer perceptron (MLP) is used as a fast optical packet loss rate (OPLR) estimator for bufferless optical packet-switched (OPS) networks. Considering average loads at the ingress switches of an OPS network, the proposed estimator estimates total OPLR as well as ingress OPLRs (the OPLR of optical packets sent from individual ingress switches). Moreover, a traffic policing algorithm called OPLRC is proposed to control ingress OPLRs in bufferless slotted OPS networks with asymmetric loads. OPLRC is a centralized greedy algorithm which uses estimated ingress OPLRs of a trained MLP to tag some optical packets at the ingress switches as eligible for drop at the core switches in case of contention. This will control ingress OPLRs of un-tagged optical packets within the specified limits while giving some chance for tagged optical packets to reach their destinations. Eventually, the accuracy of the proposed estimator along with the performance of the proposed algorithm is evaluated by extensive simulations. In terms of the algorithm, the results show that OPLRC is capable of controlling ingress OPLRs of un-tagged optical packets with an acceptable accuracy.
机译:人工神经网络(ANN)是众所周知的估算器,用于输出各种复杂系统和功能。在本文中,一种称为多层感知器(MLP)的常见ANN体系结构被用作无缓冲光分组交换(OPS)网络的快速光分组丢失率(OPLR)估计器。考虑到OPS网络的入口交换机的平均负载,建议的估算器估算总OPLR以及入口OPLR(从各个入口交换机发送的光分组的OPLR)。此外,提出了一种称为OPLRC的流量监管算法,以控制具有非对称负载的无缓冲时隙OPS网络中的入口OPLR。 OPLRC是一种集中式贪婪算法,它使用经过训练的MLP的估计入口OPLR在入口交换机处将某些光分组标记为有资格在核心交换机处发生争用时丢弃。这样可以将未标记的光分组的入口OPLR控制在指定的范围内,同时为标记的光分组到达目的地提供一些机会。最终,通过广泛的仿真评估了所提出的估计器的准确性以及所提出的算法的性能。根据算法,结果表明,OPLRC能够以可接受的精度控制未标记光分组的入口OPLR。

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