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Clustered Virtualized Network Functions Resource Allocation based on Context-Aware Grouping in 5G Edge Networks

机译:基于5G边缘网络中的上下文感知分组的集群虚拟化网络功能资源分配

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With the wide spread of various smart devices and the proliferation of internet of things (IoT) sensors, the amount of traffic on mobile networks is rapidly increasing, and applications with extreme requirements are increasing. Network function virtualization (NFV) and mobile edge computing (MEC) are emerging as core technologies to satisfy users’ real-time service demands. Adapting NFV technology to MECs allows the ability to assign cloud-computing capabilities near the base stations (BSs) of radio access networks (RANs), resulting in extremely fast service access to user equipment (UE). However, placement of virtualized network functions (VNF) within the edge network need to consider the location and the requirements of the user which change in real-time. There has been almost no consideration in the existing research on VNF resource allocation (VNF-RA) based on these aspects. Therefore, in this paper, a VNF resource allocation scheme based on context-aware grouping (VNF-RACAG) technology is proposed that enables groups (based on the geographic context of users, such as location and velocity) to compute the optimal number of clusters to minimize the end-to-end delay of network services. Then, a graph partitioning algorithm is used to minimize user movement between clusters, optimizing the data rate that users lose due to VNF migration.
机译:随着各种智能设备的广泛传播和物联网的扩散(IOT)传感器,移动网络上的流量迅速增加,并且具有极端要求的应用正在增加。网络功能虚拟化(NFV)和移动边缘计算(MEC)被涌现为核心技术,以满足用户的实时服务需求。将NFV技术适应MEC,允许在无线电接入网络(RANS)的基站(BS)附近分配云计算能力,从而极其快速的服务访问用户设备(UE)。然而,在边缘网络内的虚拟化网络功能(VNF)的位置需要考虑用户实时改变的用户的位置和要求。基于这些方面,在VNF资源分配(VNF-RA)上几乎没有考虑。因此,在本文中,提出了一种基于上下文感知分组(VNF-RACAG)技术的VNF资源分配方案,其启用组(基于用户的地理上下文,例如位置和速度)来计算最佳数量的群集最大限度地减少网络服务的端到端延迟。然后,使用图形分区算法来最小化群集之间的用户移动,优化用户因VNF迁移而失去的数据速率。

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