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Containerized Design and Realization of Network Functions Virtualization for a Light-Weight Evolved Packet Core Using OpenAirInterface

机译:轻量级演进分组核心的OpenAirInterface网络功能虚拟化的容器化设计和实现

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In recent years, network functions virtualization (NFV) has been well perceived as the driving force behind innovations of the 5G system, such as slicing precious system resources for differential service needs. In this paper, we propose a container-based design of virtual evolved packet core (vEPC) slice and its light-weight version (LW-vEPC) based on the OpenAirInterface (OAI) software package. We have successfully containerized, and thus virtualized, the EPC component functions into two separate containers: the control-plane (CP) container for virtual home subscriber server (vHSS) and virtual mobility management entity (vMME), and the data-plane (DP) container for virtual serving and packet data network gateway (vSPGW). Via a joint configuration design of virtual linking, binding and bridging, including appropriate source and destination network address translation (SNAT and DNAT), both the intra-container and inter-container communications have been successfully realized. An OAI-based joint test of vEPC with a small-cell base station (ENB) has also been successfully demonstrated via a downlink video streaming showcase from the Internet to a cellular phone. The DP container itself can also perform as a LW-EPC slice near the mobile edge of ENB to greatly reduce the latency for time-critical applications. The resource allocation methodology of multiple CPU cores for vEPC and LW-EPC slicing is being developed. This paper proposes a simple but powerful algorithm called specifically assigned cores (SAC) to achieve better utilization of CPU cores. Our preliminary results show that SAC outperforms the default scheme, namely randomly assigned cores (RAC), in terms of lower CPU load and less packet loss. The superiority of SAC over RAC amplifies with the traffic level.
机译:近年来,网络功能虚拟化(NFV)已被公认为5G系统创新背后的驱动力,例如为满足不同的服务需求而切分宝贵的系统资源。在本文中,我们基于OpenAirInterface(OAI)软件包,提出了基于容器的虚拟演进数据包核心(vEPC)slice及其轻量级版本(LW-vEPC)的设计。我们已经成功地将EPC组件功能化并进行了虚拟化,分为两个单独的容器:用于虚拟家庭订户服务器(vHSS)和虚拟移动性管理实体(vMME)的控制平面(CP)容器,以及数据平面(DP) )虚拟服务和分组数据网络网关(vSPGW)的容器。通过虚拟链接,绑定和桥接的联合配置设计,包括适当的源和目标网络地址转换(SNAT和DNAT),容器内和容器间通信均已成功实现。 vOPC与小型基站(ENB)的基于OAI的联合测试也已经成功地通过从互联网到蜂窝电话的下行视频流展示进行了演示。 DP容器本身还可以充当ENB移动边缘附近的LW-EPC切片,以大大减少对时间要求严格的应用程序的等待时间。正在开发用于vEPC和LW-EPC切片的多个CPU内核的资源分配方法。本文提出了一种简单但功能强大的算法,称为专用分配内核(SAC),以实现对CPU内核的更好利用。我们的初步结果表明,在降低CPU负载和减少数据包丢失方面,SAC的性能优于默认方案,即随机分配的内核(RAC)。 SAC相对于RAC的优越性随流量级别而放大。

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