阻滞是什么意思| 大将是什么级别| 免疫力差吃什么可以增强抵抗力| 生肖鼠和什么生肖最配| 核磁共振主要检查什么| 立本是什么意思| 三聚氰胺是什么| 医保断了一个月有什么影响| 宫颈炎有什么症状| 下夜班是什么意思| mg什么单位| 侧记是什么意思| 咳嗽完想吐是什么原因| 三羊开泰是什么意思| 乡长是什么级别| 婚姻宫是什么意思| 自控能力是什么意思| 令人发指是什么意思| 今天是什么冲什么生肖| 固表是什么意思| 感染性疾病科看什么病| 骨科什么意思| 榴莲树长什么样子图片| 精油有什么功效| 减肥早餐吃什么好| 在下是什么意思| 不走心是什么意思| 脚底长水泡是什么原因| 腰间盘突出挂什么科| 跌倒摔伤用什么药| 智齿有什么用| 白噪音什么意思| 优越感是什么意思| 财星是什么意思| 乳房边缘疼是什么原因| 蝾螈是什么| 1935年属什么生肖属相| 乌鸡蛋什么颜色| 1994年什么命| 天山翠属于什么玉| 幽门螺杆菌是什么| 臆想症是什么| 刹那芳华是什么意思| 销魂什么意思| 中途疲软吃什么药| 八九不离十是什么意思| 广东省省长什么级别| 胎儿偏小吃什么补得快| 护照需要什么材料| 喝黑咖啡有什么好处| 天伦之乐是什么意思啊| 空气棉是什么面料| 芒果什么时候吃最好| 肉刺用什么药膏能治好| 男人割了皮包什么样子| 女人手心脚心发热是什么原因| 滤泡性咽炎吃什么药| 小宇宙是什么意思| 下家是什么意思| 和什么相什么| 松花粉对肝有什么好处| 心脑血管挂什么科| 扁平疣是什么原因造成的| 中级职称是什么| 身上起红疙瘩是什么原因| 张菲和费玉清什么关系| 甲鱼和乌龟有什么区别| 餐后血糖高吃什么药| 什么的青年| 额头老出汗是什么原因| 纵容是什么意思| 跌倒摔伤用什么药| 碱什么意思| 三铵复合肥是什么| 漂流穿什么衣服| bonnie是什么意思| 破月什么意思| 高岗为什么自杀| 生态皮是什么材质| 拔完牙能吃什么| pv是什么材质| 姓彭的女孩子取什么名字好| 血脂高胆固醇高吃什么食物最好| 猫咪打呼噜代表什么| 痛风吃什么肉最好| 今年三十属什么| 尿潜血是什么意思| 为什么会得飞蚊症| 幡然是什么意思| 慢性浅表性胃炎伴糜烂吃什么药| 始终如一是什么意思| 尘字五行属什么| 多莉是什么鱼| 人生座右铭是什么意思| 屁多什么原因| 尬是什么意思| 全光谱是什么意思| 脑电图轻度异常什么病| 1966年属什么| 龟头炎挂什么科| 湿疹擦什么药| 手抓饼里面夹什么好吃| 做月子要注意什么| 花开两朵各表一枝什么意思| 便秘吃什么最快排便小孩| 有口臭是什么原因引起的| 全能神是什么| 车顶放饮料是什么意思| 甲肝阳性是什么意思| 8月3日是什么日子| 装模作样是什么生肖| 结婚有什么好处| 慢性非萎缩性胃炎伴糜烂吃什么药| 特派员是什么级别| 睾丸炎吃什么药| 腰椎骨质增生是什么意思| 早上屁多是什么原因造成的| 吃了就吐是什么原因| 牙髓炎吃什么药| 吃亏是什么意思| 彩超是什么| 冷喷机喷脸有什么好处| 为什么会停电| lop胎位是什么意思| 反射弧太长是什么意思| 北边是什么生肖| 守望先锋是什么类型的游戏| 在所不辞是什么意思| 8月26日什么星座| 艾草有什么功效| 反流性食管炎吃什么药好| 人乳头瘤病毒感染是什么意思| 后背痒是什么病的前兆| 便秘不能吃什么食物| 二尖瓣反流吃什么药| 阴间到底是什么| 天珠是什么| 血糖高吃什么降血糖| 杂交金毛犬长什么样子| 海虹是什么| touch什么意思| 板栗不能和什么一起吃| 什么的窟窿| 亡羊补牢说明什么道理| 喝牛奶拉肚子是什么原因| 什么叫甲亢病| 付字五行属什么| 二龙戏珠是什么意思| 梦见鬼是什么预兆| 抹茶粉是什么做的| 尿蛋白是什么意思| 孕中期失眠是什么原因| 淋巴细胞百分比高是什么原因| 朱雀玄武是什么意思| 山莨菪碱为什么叫6542| 雨落心尘是什么意思| 心口疼是什么原因引起的| 今年是什么年庚| 虢是什么意思| 胰腺上长瘤意味着什么| 半夜是什么生肖| 紫癜病是什么症状| 梦见儿子小时候是什么意思| 今年农历什么年| 夜排是什么意思| 吃完饭就拉肚子是什么原因| 失独是什么意思| 肝硬化是什么意思| 格色是什么意思| vc是什么药| 圆脸适合什么镜框| 来大姨妈吃什么对身体好| 鲁冰花是什么花| 感触什么意思| 梦见大狼狗是什么意思| 落子无悔是什么意思| 压床娃娃有什么讲究吗| 神灵是什么意思| 出单是什么意思| 胃火旺吃什么好| 下午4点多是什么时辰| 感冒应该挂什么科| 小孩脸上长痣是什么原因引起的| 鳞状上皮增生是什么病| 续航是什么意思| 三个手念什么| 鼠标dpi是什么| ncu病房是什么意思| 节节草有什么功效| 激素是什么| 小孩手指头脱皮是什么原因| 端庄的意思是什么| 痛风什么水果不能吃| 眼睛充血是什么原因引起的| 什么叫放疗| 夕阳无限好是什么意思| 参数错误是什么意思| 失眠吃什么食物最有效| 731是什么意思| 梦见自己儿子死了是什么意思| 今是什么结构| 皮肤自愈能力差缺什么| 嘴唇有黑斑是什么病| 白天咳嗽晚上不咳嗽是什么原因| pt是什么元素| 嘴唇干是什么原因| 什么食物含维生素b| 夏天煲什么汤好| 灰色t恤配什么颜色裤子| 头皮痒用什么药最有效| 孕中期同房要注意什么| 吃什么能消除脂肪瘤| kitty什么意思| 挽尊什么意思| 长沙有什么特产| 直率是什么意思| 广州有什么特产必带| 肠胃炎不能吃什么| 血友病是什么意思| 果脯是什么东西| 喉咙痛是什么原因引起的| 紫色睡莲的花语是什么| 奶酪是什么| 水晶绒是什么面料| 祖师爷是什么意思| 卤米松软膏主治什么| 马来酸曲美布汀片什么时候吃| 平均红细胞体积偏高说明什么| 义是什么意思| 香茅是什么东西| 头胀痛什么原因| 虎是什么命| 晚上七点是什么时辰| 西康省是现在什么地方| 颧骨疼是什么原因| 岫玉是什么| 为什么一来月经就拉肚子| 心肌酶是检查什么的| 女人喝甘草水有什么好处| 中学为体西学为用是什么意思| 黄芪补什么| 什么是粉丝| nk是什么意思| gucci中文叫什么牌子| swisse是什么药| 孙耀威为什么被雪藏| 梅杰综合症是什么病| 化干戈为玉帛是什么意思| 态生两靥之愁中靥指什么| 慈字五行属什么| 吃了安宫牛黄丸要禁忌什么不能吃| 婴儿胀气是什么原因| 随性是什么意思| 腰的左侧疼是什么原因| 耳朵发烫是什么征兆| 杨幂的公司叫什么名字| 卵巢增大是什么原因引起的| 紧急避孕药什么时候吃有效| 孕妇无创检查是什么| 腹部胀气是什么原因| 吃什么清肝火最快| 心肝血虚吃什么中成药| poem是什么意思| 墨西哥用什么语言| 百度
百度 (成年版曲哲明饰)《生逢灿烂的日子》就是讲述了这一家住在北京胡同里的四兄弟故事,很像多年前《贫嘴张大民的幸福生活》,很接地气,具有时代感。

Network functions virtualization (NFV)[1] is a network architecture concept that leverages IT virtualization technologies to virtualize entire classes of network node functions into building blocks that may connect, or chain together, to create and deliver communication services.

NFV relies upon traditional server-virtualization techniques such as those used in enterprise IT. A virtualized network function, or VNF, is implemented within one or more virtual machines or containers running different software and processes, on top of commercial off the shelf (COTS) high-volume servers, switches and storage devices, or even cloud computing infrastructure, instead of having custom hardware appliances for each network function thereby avoiding vendor lock-in.

For example, a virtual session border controller could be deployed to protect a network without the typical cost and complexity of obtaining and installing physical network protection units. Other examples of NFV include virtualized load balancers, firewalls, intrusion detection devices and WAN accelerators to name a few.[2]

The decoupling of the network function software from the customized hardware platform realizes a flexible network architecture that enables agile network management, fast new service roll outs with significant reduction in CAPEX and OPEX.

Background

edit

Product development within the telecommunication industry has traditionally followed rigorous standards for stability, protocol adherence and quality, reflected by the use of the term carrier grade to designate equipment demonstrating this high reliability and performance factor.[3] While this model worked well in the past, it inevitably led to long product cycles, a slow pace of development and reliance on proprietary or specific hardware, e.g., bespoke application-specific integrated circuits (ASICs). This development model resulted in significant delays when rolling out new services, posed complex interoperability challenges and significant increase in CAPEX/OPEX when scaling network systems & infrastructure and enhancing network service capabilities to meet increasing network load and performance demands. Moreover, the rise of significant competition in communication service offerings from agile organizations operating at large scale on the public Internet (such as Google Talk, Skype, Netflix) has spurred service providers to look for innovative ways to disrupt the status quo and increase revenue streams.

History

edit

In October 2012, a group of telecom operators published a white paper[4] at a conference in Darmstadt, Germany, on software-defined networking (SDN) and OpenFlow. The Call for Action concluding the White Paper led to the creation of the Network Functions Virtualization (NFV) Industry Specification Group (ISG) [5] within the European Telecommunications Standards Institute (ETSI). The ISG was made up of representatives from the telecommunication industry from Europe and beyond.[6][7] ETSI ISG NFV addresses many aspects, including functional architecture, information model, data model, protocols, APIs, testing, reliability, security, future evolutions, etc.

The ETSI ISG NFV has announced the Release 5 of its specifications since May 2021 aiming to produce new specifications and extend the already published specifications based on new features and enhancements.

Since the publication of the white paper, the group has produced over 100 publications,[8] which have gained wider acceptance in the industry and are being implemented in prominent open source projects like OpenStack, ONAP, Open Source MANO (OSM) to name a few. Due to active cross-liaison activities, the ETSI NFV specifications are also being referenced in other SDOs like 3GPP, IETF, ETSI MEC etc.

Framework

edit

The NFV framework consists of three main components:[9]

  1. Virtualized network functions (VNFs) are software implementations of network functions that can be deployed on a network functions virtualization infrastructure (NFVI).[10]
  2. Network functions virtualization infrastructure (NFVI) is the totality of all hardware and software components that build the environment where NFVs are deployed. The NFV infrastructure can span several locations. The network providing connectivity between these locations is considered as part of the NFV infrastructure.
  3. Network functions virtualization management and orchestration architectural framework (NFV-MANO Architectural Framework) is the collection of all functional blocks, data repositories used by these blocks, and reference points and interfaces through which these functional blocks exchange information for the purpose of managing and orchestrating NFVI and VNFs.

The building block for both the NFVI and the NFV-MANO is the NFV platform. In the NFVI role, it consists of both virtual and physical processing and storage resources, and virtualization software. In its NFV-MANO role it consists of VNF and NFVI managers and virtualization software operating on a hardware controller. The NFV platform implements carrier-grade features used to manage and monitor the platform components, recover from failures and provide effective security – all required for the public carrier network.

Practical aspects

edit

A service provider that follows the NFV design implements one or more virtualized network functions, or VNFs. A VNF by itself does not automatically provide a usable product or service to the provider's customers. To build more complex services, the notion of service chaining is used, where multiple VNFs are used in sequence to deliver a service.

Another aspect of implementing NFV is the orchestration process. To build highly reliable and scalable services, NFV requires that the network be able to instantiate VNF instances, monitor them, repair them, and (most important for a service provider business) bill for the services rendered. These attributes, referred to as carrier-grade[11] features, are allocated to an orchestration layer in order to provide high availability and security, and low operation and maintenance costs. Importantly, the orchestration layer must be able to manage VNFs irrespective of the underlying technology within the VNF. For example, an orchestration layer must be able to manage an SBC VNF from vendor X running on VMware vSphere just as well as an IMS VNF from vendor Y running on KVM.

Distributed NFV

edit

The initial perception of NFV was that virtualized capability should be implemented in data centers. This approach works in many – but not all – cases. NFV presumes and emphasizes the widest possible flexibility as to the physical location of the virtualized functions.

Ideally, therefore, virtualized functions should be located where they are the most effective and least expensive. That means a service provider should be free to locate NFV in all possible locations, from the data center to the network node to the customer premises. This approach, known as distributed NFV, has been emphasized from the beginning as NFV was being developed and standardized, and is prominent in the recently released NFV ISG documents.[12]

For some cases there are clear advantages for a service provider to locate this virtualized functionality at the customer premises. These advantages range from economics to performance to the feasibility of the functions being virtualized.[13]

The first ETSI NFV ISG-approved public multi-vendor proof of concept (PoC) of D-NFV was conducted by Cyan, Inc., RAD, Fortinet and Certes Networks in Chicago in June, 2014, and was sponsored by CenturyLink. It was based on RAD's dedicated customer-edge D-NFV equipment running Fortinet's Next Generation Firewall (NGFW) and Certes Networks’ virtual encryption/decryption engine as Virtual Network Functions (VNFs) with Cyan's Blue Planet system orchestrating the entire ecosystem.[14] RAD's D-NFV solution, a Layer 2/Layer 3 network termination unit (NTU) equipped with a D-NFV X86 server module that functions as a virtualization engine at the customer edge, became commercially available by the end of that month.[15] During 2014 RAD also had organized a D-NFV Alliance, an ecosystem of vendors and international systems integrators specializing in new NFV applications.[16]

NFV modularity benefits

edit

When designing and developing the software that provides the VNFs, vendors may structure that software into software components (implementation view of a software architecture) and package those components into one or more images (deployment view of a software architecture). These vendor-defined software components are called VNF Components (VNFCs). VNFs are implemented with one or more VNFCs and it is assumed, without loss of generality, that VNFC instances map 1:1 to VM Images.

VNFCs should in general be able to scale up and/or scale out. By being able to allocate flexible (virtual) CPUs to each of the VNFC instances, the network management layer can scale up (i.e., scale vertically) the VNFC to provide the throughput/performance and scalability expectations over a single system or a single platform. Similarly, the network management layer can scale out (i.e., scale horizontally) a VNFC by activating multiple instances of such VNFC over multiple platforms and therefore reach out to the performance and architecture specifications whilst not compromising the other VNFC function stabilities.

Early adopters of such architecture blueprints have already implemented the NFV modularity principles.[17]

Relationship to SDN

edit

Network Functions Virtualisation is highly complementary to SDN.[4] In essence, SDN is an approach to building data networking equipment and software that separates and abstracts elements of these systems. It does this by decoupling the control plane and data plane from each other, such that the control plane resides centrally and the forwarding components remain distributed. The control plane interacts with both northbound and southbound. In the northbound direction the control plane provides a common abstracted view of the network to higher-level applications and programs using high-level APIs and novel management paradigms, such as Intent-based networking. In the southbound direction the control plane programs the forwarding behavior of the data plane, using device level APIs of the physical network equipment distributed around the network.

Thus, NFV is not dependent on SDN or SDN concepts, but NFV and SDN can cooperate to enhance the management of a NFV infrastructure and to create a more dynamic network environment. It is entirely possible to implement a virtualized network function (VNF) as a standalone entity using existing networking and orchestration paradigms. However, there are inherent benefits in leveraging SDN concepts to implement and manage an NFV infrastructure, particularly when looking at the management and orchestration of Network Services (NS), composed of different type of Network Functions (NF), such as Physical Network Functions (PNF) and VNFs, and placed between different geo-located NFV infrastructures, and that's why multivendor platforms are being defined that incorporate SDN and NFV in concerted ecosystems.[18]

An NFV system needs a central orchestration and management system that takes operator requests associated with an NS or a VNF, translates them into the appropriate processing, storage and network configuration needed to bring the NS or VNF into operation. Once in operation, the VNF and the networks it is connected to potentially must be monitored for capacity and utilization, and adapted if necessary.[19]

All network control functions in an NFV infrastructure can be accomplished using SDN concepts and NFV could be considered one of the primary SDN use cases in service provider environments.[20] For example, within each NFV infrastructure site, a VIM could rely upon an SDN controller to set up and configure the overlay networks interconnecting (e.g. VXLAN) the VNFs and PNFs composing an NS. The SDN controller would then configure the NFV infrastructure switches and routers, as well as the network gateways, as needed. Similarly, a Wide Area Infrastructure Manager (WIM) could rely upon an SDN controller to set up overlay networks to interconnect NSs that are deployed to different geo-located NFV infrastructures. It is also apparent that many SDN use-cases could incorporate concepts introduced in the NFV initiative. Examples include where the centralized controller is controlling a distributed forwarding function that could in fact be also virtualized on existing processing or routing equipment.

Industry impact

edit

NFV has proven a popular standard even in its infancy. Its immediate applications are numerous, such as virtualization of mobile base stations, platform as a service (PaaS), content delivery networks (CDN), fixed access and home environments.[21] The potential benefits of NFV is anticipated to be significant. Virtualization of network functions deployed on general purpose standardized hardware is expected to reduce capital and operational expenditures, and service and product introduction times.[22][23] Many major network equipment vendors have announced support for NFV.[24] This has coincided with NFV announcements from major software suppliers who provide the NFV platforms used by equipment suppliers to build their NFV products.[25][26]

However, to realize the anticipated benefits of virtualization, network equipment vendors are improving IT virtualization technology to incorporate carrier-grade attributes required to achieve high availability, scalability, performance, and effective network management capabilities.[27] To minimize the total cost of ownership (TCO), carrier-grade features must be implemented as efficiently as possible. This requires that NFV solutions make efficient use of redundant resources to achieve five-nines availability (99.999%),[28] and of computing resource without compromising performance predictability.

The NFV platform is the foundation for achieving efficient carrier-grade NFV solutions.[29] It is a software platform running on standard multi-core hardware and built using open source software that incorporates carrier-grade features. The NFV platform software is responsible for dynamically reassigning VNFs due to failures and changes in traffic load, and therefore plays an important role in achieving high availability. There are numerous initiatives underway to specify, align and promote NFV carrier-grade capabilities such as ETSI NFV Proof of Concept,[30] ATIS[31] Open Platform for NFV Project,[32] Carrier Network Virtualization Awards[33] and various supplier ecosystems.[34]

The vSwitch, a key component of NFV platforms, is responsible for providing connectivity both VM-to-VM (between VMs) and between VMs and the outside network. Its performance determines both the bandwidth of the VNFs and the cost-efficiency of NFV solutions. The standard Open vSwitch's (OVS) performance has shortcomings that must be resolved to meet the needs of NFVI solutions.[35] Significant performance improvements are being reported by NFV suppliers for both OVS and Accelerated Open vSwitch (AVS) versions.[36][37]

Virtualization is also changing the way availability is specified, measured and achieved in NFV solutions. As VNFs replace traditional function-dedicated equipment, there is a shift from equipment-based availability to a service-based, end-to-end, layered approach.[38][39] Virtualizing network functions breaks the explicit coupling with specific equipment, therefore availability is defined by the availability of VNF services. Because NFV technology can virtualize a wide range of network function types, each with their own service availability expectations, NFV platforms should support a wide range of fault tolerance options. This flexibility enables CSPs to optimize their NFV solutions to meet any VNF availability requirement.

Management and orchestration (MANO)

edit

ETSI has already indicated that an important part of controlling the NFV environment be done through automated orchestration. NFV Management and Orchestration (NFV-MANO) refers to a set of functions within an NFV system to manage and orchestrate the allocation of virtual infrastructure resources to virtualized network functions (VNFs) and network services (NSs). They are the brains of the NFV system and a key automation enabler.

The main functional blocks within the NFV-MANO architectural framework (ETSI GS NFV-006 ) are:

  • Network Functions Virtualisation Orchestrator (NFVO);
  • Virtualised Network Function Manager (VNFM);
  • Virtualised Infrastructure Manager (VIM).

The entry point in NFV-MANO for external operations support systems (OSS) and business support systems (BSS) is the NFVO, which is in charge of managing the lifecycle of NS instances. The management of the lifecycle of VNF instances constituting an NS instance is delegated by the NFVO to one more or VNFMs. Both the NFVO and the VNFMs uses the services exposed by one or more VIMs for allocating virtual infrastructure resources to the objects they manage. Additional functions are used for managing containerized VNFs: the Container Infrastructure Service Management (CISM) and the Container Image Registry (CIR) functions. The CISM is responsible for maintaining the containerized workloads while the CIR is responsible for storing and maintaining information of OS container software images The behavior of the NFVO and VNFM is driven by the contents of deployment templates (a.k.a. NFV descriptors) such as a Network Service Descriptor (NSD) and a VNF Descriptor (VNFD).

ETSI delivers a full set of standards enabling an open ecosystem where Virtualized Network Functions (VNFs) can be interoperable with independently developed management and orchestration systems, and where the components of a management and orchestration system are themselves interoperable. This includes a set of Restful API specifications[40] as well as the specifications of a packaging format for delivering VNFs to service providers and of the deployment templates to be packaged with the software images to enable managing the lifecycle of VNFs. Deployment templates can be based on TOSCA or YANG.[41][42]

An OpenAPI (a.k.a. Swagger) representation of the API specifications is available and maintained on the ETSI forge server, along with TOSCA and YANG definition files to be used when creating deployment templates.

The full set of published specifications is summarized in the table below.

Specification Title
ETSI GS NFV-SOL 001 NFV descriptors based on TOSCA specification
ETSI GS NFV-SOL 002 RESTful protocols specification for the Ve-Vnfm Reference Point
ETSI GS NFV-SOL 003 RESTful protocols specification for the Or-Vnfm Reference Point
ETSI GS NFV-SOL 004 VNF Package and PNFD Archive specification
ETSI GS NFV-SOL 005 RESTful protocols specification for the Os-Ma-nfvo Reference Point
ETSI GS NFV-SOL 006 NFV descriptors based on YANG Specification
ETSI GS NFV-SOL 007 Network Service Descriptor file structure specification
ETSI GS NFV-SOL 009 RESTful protocols specification for the management of NFV-MANO
ETSI GS NFV-SOL 010 VNF Snapshot Package specification
ETSI GS NFV-SOL 011 RESTful protocols specification for the Or-Or Reference Point
ETSI GS NFV-SOL 012 RESTful protocols specification for the Policy Management interface
ETSI GS NFV-SOL 013 Specification of common aspects for RESTful NFV MANO APIs
ETSI GS NFV-SOL 014 YAML data model specification for descriptor-based virtualised resource management
ETSI GS NFV-SOL 015 Specification of Patterns and Conventions for RESTful NFV-MANO APIs
ETSI GS NFV-SOL 016 NFV-MANO procedures specification
ETSI GS NFV-SOL 018 Profiling specification of protocol and data model solutions for

OS Container management and orchestration

An overview of the different versions of the OpenAPI representations of NFV-MANO APIs is available on the ETSI NFV wiki.

The OpenAPI files as well as the TOSCA YAML definition files and YANG modules applicable to NFV descriptors are available on the ETSI Forge.

Additional studies are ongoing within ETSI on possible enhancement to the NFV-MANO framework to improve its automation capabilities and introduce autonomous management mechanisms (see ETSI GR NFV-IFA 041 )

Performance study

edit

Recent performance study on NFV focused on the throughput, latency and jitter of virtualized network functions (VNFs), as well as NFV scalability in terms of the number of VNFs a single physical server can support.[43] Open source NFV platforms are available, one representative is openNetVM.[44] openNetVM is a high performance NFV platform based on DPDK and Docker containers. openNetVM provides a flexible framework for deploying network functions and interconnecting them to build service chains. openNetVM is an open source version of the NetVM platform described in NSDI 2014 and HotMiddlebox 2016 papers, released under the BSD license. The source code can be found at GitHub:openNetVM[45]

Cloud-native network functions

edit

From 2018, many VNF providers began to migrate many of their VNFs to a container-based architecture. Such VNFs also known as Cloud-Native Network Functions (CNF) utilize many innovations deployed commonly on internet infrastructure. These include auto-scaling, supporting a continuous delivery / DevOps deployment model, and efficiency gains by sharing common services across platforms. Through service discovery and orchestration, a network based on CNFs will be more resilient to infrastructure resource failures. Utilizing containers, and thus dispensing with the overhead inherent in traditional virtualization through the elimination of the guest OS can greatly increase infrastructure resource efficiency.[46]

See also

edit

References

edit
  1. ^ "ETSI - Standards for NFV - Network Functions Virtualisation | NFV Solutions".
  2. ^ "Network Functions Virtualisation (NFV); Use NFV is present and SDN is future" (PDF). Retrieved 6 June 2014.
  3. ^ Stephenson, Rick (2025-08-06). "How Low-Cost Telecom Killed Five 9s in Cloud Computing". Wired. Retrieved 2025-08-06.
  4. ^ a b "Network Functions Virtualization— Introductory White Paper" (PDF). ETSI. 22 October 2012. Retrieved 20 June 2013.
  5. ^ "Network Functions Virtualisation". ETSI Standards for NFV. Retrieved 30 June 2020.
  6. ^ Le Maistre, Ray (22 October 2012). "Tier 1 Carriers Tackle Telco SDN". Light Reading. Retrieved 20 June 2013.
  7. ^ "Latest Agenda at SDN & OpenFlow World Congress". Layer123.com. Archived from the original on October 14, 2012. Retrieved 20 June 2013.
  8. ^ "Standards for NFV: Network Functions Virtualisation". ETSI. NFV Solutions.
  9. ^ "Network-Functions Virtualization (NFV) Proofs of Concept".
  10. ^ "What is Network Function Virtualization (NFV)". blog.datapath.io. Archived from the original on 2025-08-06. Retrieved 2025-08-06.
  11. ^ Ashton, Charlie (April 2014). "Don't Confuse "High Availability" with "Carrier Grade"". Embedded Community. Archived from the original on 2025-08-06.
  12. ^ Tom Nolle (18 September 2013). "Is "Distributed NFV" Teaching Us Something?". CIMI Corporation's Public Blog. Retrieved 2 January 2014.
  13. ^ Carol Wilson (3 October 2013). "RAD Rolls Out Distributed NFV Strategy". Light Reading. Retrieved 2 January 2014.
  14. ^ "4 Vendors Bring Distributed NFV to BTE". Light Reading. June 11, 2014. Retrieved March 3, 2015.
  15. ^ "RAD launches customer-edge distributed NFV solution based on ETX NTU platform". Optical Keyhole. June 16, 2014. Retrieved March 3, 2015.
  16. ^ "RAD adds new partners to D-NFV Alliance". Telecompaper. December 9, 2014. Retrieved March 3, 2015.
  17. ^ TMCnet News (26 June 2014). "Qosmos Awarded a 2014 INTERNET TELEPHONY NFV Pioneer Award". TMC. Retrieved 26 June 2014.
  18. ^ "Platform to Multivendor Virtual and Physical Infrastructure".
  19. ^ Liyanage, Madhusanka (2015). Software Defined Mobile Networks (SDMN): Beyond LTE Network Architecture. UK: John Wiley. pp. 1–438. ISBN 978-1-118-90028-4.
  20. ^ "Report on SDN Usage in NFV Architectural Framework" (PDF). ETSI. December 2015. Retrieved 7 December 2021.
  21. ^ "Network Functions Virtualization (NFV) Use Cases" (PDF).
  22. ^ "What's NFV – Network Functions Virtualization?". SDN Central.
  23. ^ "Carrier Network Virtualization". ETSI news.
  24. ^ "Openwave Exec Discusses the Benefits, Challenges of NFV & SDN". Article. 12 November 2013. Archived from the original on 3 March 2016. Retrieved 22 November 2013.
  25. ^ Doyle, Lee. "Middleware for the NFV Generation". Service Provider IT Report.
  26. ^ Sharma, Ray. "Wind River Launches NFV Ecosystem Program with Five Industry Leaders". PCC Mobile Broadband.
  27. ^ Ashton, Charlie (January 2015). "Carrier-Grade Reliability—A "Must-Have" for NFV Success". Electronic Design.
  28. ^ Lemke, Andreas (November 2014). "5 must-have attributes of an NFV platform". Techzine, Alcatel-Lucent. Archived from the original on 2025-08-06.
  29. ^ "Why Service Providers Need an NFV Platform" (PDF). Intel Strategic paper. Archived from the original (PDF) on 2025-08-06.
  30. ^ "NFV Proof of Concept". ETSI.
  31. ^ Wilson, Carol (16 September 2015). "New NFV Forum Focused on Interoperability". Light Reading.
  32. ^ "OPNFV". Linux Foundation Collaborative Projects Foundation.
  33. ^ "Carrier Network Virtualization Awards". December 2015. Archived from the original on 2025-08-06.
  34. ^ Nolle, Tom (June 2014). "Wind River's Ecosystemic Solution to NFV and Orchestration". CIMI Corporation Public Blog.
  35. ^ Pettit, Justin (11 November 2014). "Accelerating Open vSwitch to "Ludicruos Speed"". Network Heresy: Tales of the network reformation.
  36. ^ "Wind River Delivers Breakthrough Performance for Accelerated vSwitch Optimized for NFV". Wind River News Room. May 2014.
  37. ^ "6WIND Announces Open vSwitch Acceleration for Red Hat Enterprise Linux OpenStack Platform". PRweb. April 2014.
  38. ^ "Network Functions Virtualization Challenges and Solutions" (PDF). Alcatel-Lucent. 2013.
  39. ^ "NFV: The Myth of Application-Level High Availability". Wind River. May 2015. Archived from the original on 2025-08-06.
  40. ^ Chatras, B. (December 2018). "On the Standardization of NFV Management and Orchestration APIs". IEEE Communications Standards Magazine. 2 (4): 66–71. doi:10.1109/MCOMSTD.2018.1800032. ISSN 2471-2825. S2CID 59620488.
  41. ^ ETSI COMS TEAM. "ETSI - ETSI releases a standard for NFV Deployment Templates". ETSI. Retrieved 2025-08-06.
  42. ^ "Technology blogs, NFV, MEC, NGP, ZSM, ENI - SOL006 – NFV descriptors based on YANG Specification". www.etsi.org. Retrieved 2025-08-06.
  43. ^ Wang, Chengwei; Spatscheck, Oliver; Gopalakrishnan, Vijay; Xu, Yang; Applegate, David (2016). "Toward High-Performance and Scalable Network Functions Virtualization". IEEE Internet Computing. 20 (6): 10–20. doi:10.1109/MIC.2016.111. S2CID 15518060.
  44. ^ "OpenNetVM: A Platform for High Performance Network Service Chains" (PDF). doi:10.1145/2940147.2940155. S2CID 13706879. {{cite journal}}: Cite journal requires |journal= (help)
  45. ^ "GitHub- OpenNetVM". GitHub.
  46. ^ "Cloud-Native Network Functions". Cisco. Retrieved 1 April 2021.
edit
浅笑安然是什么意思 人为什么会打喷嚏 故宫什么时候闭馆 面粉做什么好吃又简单 人流后吃什么恢复快
五月五日什么星座 下面痒用什么清洗最好 什么饮料好喝又健康 双相是什么意思 尿检是检查什么的
感激涕零什么意思 尿路感染吃什么药消炎 看胆囊挂什么科 疼风是什么原因引起的 柠檬泡水有什么好处
防蓝光眼镜有什么好处 江与河有什么区别 ahc是什么牌子 蛇爱吃什么食物 我做错了什么
丙氨酸氨基转移酶是什么意思hcv7jop5ns5r.cn 男人为什么好色ff14chat.com dex是什么药hcv8jop4ns5r.cn 秦昊的父母是干什么的hcv8jop6ns9r.cn 乳房挂什么科hcv9jop5ns8r.cn
阴虚吃什么中成药tiangongnft.com 塔丝隆是什么面料hcv8jop7ns8r.cn 没必要什么意思hcv7jop9ns6r.cn 扁桃体发炎可以吃什么水果jinxinzhichuang.com 咽喉充血是什么原因helloaicloud.com
蝾螈是什么动物hcv8jop3ns2r.cn girls是什么意思hcv8jop7ns8r.cn 劫伤是什么意思hcv7jop6ns3r.cn o型血父母是什么血型hcv8jop7ns5r.cn 黄芪喝多了有什么副作用clwhiglsz.com
岳飞为什么必须死jingluanji.com TV什么意思hcv9jop6ns2r.cn 为什么日语怎么说weuuu.com 夜晚的星星像什么hcv8jop1ns1r.cn 凌晨三点是什么时辰hcv9jop1ns9r.cn
百度