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Optimized fast handover scheme in Mobile IPv6 networks to support mobile users for cloud computing

机译:优化了移动IPv6网络中的快速切换方案,以支持移动用户进行云计算

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摘要

In the future cloud computing, users will heavily use mobile devices. Mobile networks for cloud computing should be managed efficiently as well as support seamless services to mobile users regardless of their locations and movements. Hence, in mobile networks for cloud computing, it is important to support seamless mobility management to mobile users who request real-time services such as VoIP, streaming, and interactive game playing. To support seamless mobility management for various wireless technologies in cloud computing, Mobile IPv6 (MIPv6) and fast handovers for MIPv6 (FMIPv6) have been studied. FMIPv6 has been emerged to reduce long handover latency and packet loss in MIPv6. FMIPv6 may provide seamless handover by minimizing the handover latency, and prevent packet loss through buffering and tunneling. FMIPv6 uses anticipation based on layer 2 trigger information, and consists of two operation modes such as the predictive mode and the reactive mode. Several works have been done to evaluate the performance of FMIPv6 in different network environments. However, the previous works did not consider the probability of predictive mode failure (PPMF) that distinguishes two operation modes. Even in the most previous work, two operation modes of FMIPv6 are evaluated separately. However, to accurately analyze the overall performance of FMIPv6, two operation modes should be analyzed altogether. In this paper, FMIPv6 combining two operation modes is analyzed considering the PPMF that is affected by the radius of a cell, velocity of mobile nodes, and the layer 2 triggering time. The effect of system parameters, such as the PPMF, the time required to process additional layer 3 signaling, and the layer 2 trigger time, is analytically investigated with respect to the signaling cost and the packet delivery cost. Analytical results show a trade-off between performance and system parameters. Then we show methods to optimize overhead of FMIPv6. Finally, mobile networks for cloud computing can be efficiently managed through the optimized FMIPv6.
机译:在未来的云计算中,用户将大量使用移动设备。用于云计算的移动网络应得到有效管理,并支持对移动用户的无缝服务,无论其位置和移动如何。因此,在用于云计算的移动网络中,对要求实时服务(例如VoIP,流媒体和交互式游戏)的移动用户支持无缝移动性管理非常重要。为了支持云计算中各种无线技术的无缝移动性管理,已经研究了移动IPv6(MIPv6)和MIPv6的快速切换(FMIPv6)。 FMIPv6已经出现,可以减少MIPv6中的长时间切换延迟和数据包丢失。 FMIPv6可以通过最小化切换等待时间来提供无缝切换,并通过缓冲和隧道防止数据包丢失。 FMIPv6使用基于第2层触发信息的预期,并由两种运行模式组成,例如预测模式和反应模式。已经完成了多项工作来评估FMIPv6在不同网络环境中的性能。但是,先前的工作并未考虑将两种操作模式区分开的预测模式故障(PPMF)的可能性。即使在最新的工作中,也会分别评估FMIPv6的两种操作模式。但是,为了准确地分析FMIPv6的整体性能,应该一起分析两种操作模式。在本文中,考虑了受到小区半径,移动节点速度和第2层触发时间影响的PPMF,分析了结合两种操作模式的FMIPv6。关于信令成本和分组传输成本,从分析角度研究了系统参数(例如PPMF),处理其他第3层信令所需的时间以及第2层触发时间的影响。分析结果表明,性能和系统参数之间需要权衡。然后,我们展示了优化FMIPv6开销的方法。最后,可以通过优化的FMIPv6有效地管理用于云计算的移动网络。

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