面向实时业务支持的自组织网络QoS预测的非平稳随机模型

N. Tabbane, Sami Tabbane, Ahmed. Mehaoua
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引用次数: 3

摘要

在本文中,我们试图降低QoS的退化程度,同时增强对网络服务质量的估计。我们将提出基于自回归集成移动平均过程的资源预测方法,以满足实时服务支持的QoS要求:ARIMA结合自组织路由协议:DSR。这些过程提供了一系列平稳和非平稳的模型,充分代表了许多时间QoS变化。结果表明(在吞吐量和端到端延迟方面),基于ARIMA过程的DSR协议与时间QoS预测相结合的性能优于传统的DSR。
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Non stationary stochastic models for forecasting QoS in ad hoc networks for real-time service support
In this paper, we try to reduce the degree of QoS degradation while enhancing at the same time the estimation of the quality of service of the networks. We shall present methods for forecasting resources to meet the QoS requirements for real-time service support based on autoregressive integrated moving average processes: ARIMA combined with the ad hoc routing protocol: DSR. These processes provide a range of models, stationary and non-stationary, that adequately represent many of the time QoS variations. The results obtained (in terms of throughputs and end-to-end delays) show that the combination of the DSR protocol with the time QoS forecasting, based on ARIMA processes, performs better than conventional DSR.
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